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Das Ziel dieser Arbeit wurde eingangs über den Begriff der erweiterten Schließung der optischen und mikrophysikalischen Eigenschaften der Partikel definiert. Hierunter versteht man das Zusammenfügen von verschiedenen Messungen zu einem konsistenten Bild der betrachteten Partikeleigenschaften. Darüber hinaus sollen die Messungen auch in anderen Teilgebieten der Aerosolphysik verwendbar sein, um so das konsistente Bild zu erweitern. Dieses so umschriebene Ziel konnte für die mikrophysikalischen und optischen Messergebnisse, die während des LACE 98 Experimentes, einem vom Bundesministerium für Forschung und Bildung (Bmb f) geförderten Schließungsexperiment, in Lindenberg (Brandenburg) rund 50 km südöstlich von Berlin im Juli und August 1998 erfasst wurden, erreicht werden. Die Messungen wurden erfolgreich zu einem konsistenten Datensatz und einem "Bild" der Partikeleigenschaften zusammengefügt. Unter dem Begriff "Bild" subsummiert sich hierbei nicht nur eine Charakterisierung der Variabilität und Abhängigkeit der Partikeleigenschaften, z.B. von der rel. Luftfeuchte, sondern darüber hinaus auch eine Charakterisierung der Beeinflussung verschiedener von den Eigenschaften der Partikel abhängiger Größen. Hierzu zählen Strahlungshaushaltsgrößen (Erwärmungsrate der Luft durch Absorption solarer Strahlung und die Volumenabsorption solarer Strahlung durch Partikel), wolkenphysikalische Größen (maximale Übersättigung der Wolkenluft während der Wolkenentstehung und Anzahlkonzentration der wachsenden Wolkentropfen), die massengewichtete mittlere Sedimentationsgeschwindigkeit von Partikeln und nicht zuletzt gesundheitsrelevante Größen, wie z.B. die vom Menschen beim Atmen aufgenommene und eingelagerte Partikelmasse. Nachfolgende Zusammenstellung soll nochmals die erzielten Ergebnisse zusammenfassen. Für eine detaillierte Darstellung der in den einzelnen Kapiteln erzielten Ergebnisse soll hier nur auf die jeweiligen Zusammenfassungen der einzelnen Kapitel verwiesen werden. . Im Rahmen der direkten Schließung, wurden unterschiedliche Verfahren zur Bestimmung der optischen Eigenschaften der Partikel erfolgreich miteinander verglichen. Beteiligt waren bei diesem Vergleich folgende Methoden: Partikel im trockenen Zustand: -- Aerosolphotometer (alle optischen Eigenschaften, ) -- Nephelometer (Streukoeffizient) -- PSAP (Absorptionskoeffizient) -- IPMethode (Absorptionskoeffizient) -- Telephotometer (Extinktionskoeffizient) Partikel bei Umgebungsfeuchte: -- Telephotometer (Extinktionskoeffizient) -- horizontales Lidar (Extinktionskoeffizient) Es zeigte sich, dass sich das Aerosolphotometer mit seinem schon aus der Theorie des Messverfahrens her begründeten konsistenten Satz aller optischen Eigenschaften als Referenzmethode während LACE 98 bewährte. Mit seiner Hilfe konnte nun auch die Gültigkeit einer empirischen Korrektur des PSAP nach Bond et al. [1999] für natürliche Aerosolpartikel bestätigt werden. Dem Anwender dieses Gerätes, das mit einer hervorragenden zeitlichen Auflösung von wenigen Minuten den Absorptionskoeffizienten bestimmt, stehen somit zwei unabhängig voneinander gewonnene Kalibrierungsfunktionen zur Verfügung, die innerhalb der Fehlergrenzen auch mit einander im Einklang stehen. . Im Rahmen der indirekten Schließung wurde ein Modell entwickelt, mit dem auf Basis eines Kugelschalenmodells der Partikel aus Messungen der mikrophysikalischen Eigenschaften der Partikel den Extinktions, den Streu- und den Absorptionskoeffizienten sowie die Single Scattering Albedo berechnet wurden. Mit Hilfe dieses Modells wurde der Feuchteeffekt der oben genannten optischen Eigenschaften berechnet. Mit diesen Ergebnissen konnten dann die Messwerte des Telephotometers feuchtekorrigiert, und mit den Messungen des Aerosolphotometers verglichen werden, wo bei eine gute Übereinstimmung der Messreihen festgestellt werden konnte. Die beobachteten Unterschiede konnten auf Ernteaktivitäten, die nur die Messungen des Telephotometers beeinflussten, zurückgeführt werden. Ein Vergleich der mit Hilfe des Modells auch direkt berechenbaren optischen Eigenschaften mit den direkten Messwerten der beteiligten Verfahren fiel ebenfalls positiv aus. Anhand aller Modellrechnungen wurde eine physikalisch motivierte Näherungsfunktion für den Feuchteeffekt des Extinktions- und des Streukoeffizienten als Funktion des Aktivierungsparameters bereit gestellt. In Klimamodellen kann mit Hilfe der vorgestellten Näherungsfunktionen der Feuchteeffekt auf einfache Weise parametrisiert werden. Wenn man allerdings konkrete Messergebnisse miteinander vergleichen möchte, ist man auf eine vollständige Erfassung der mikrophysikalischen Eigenschaften der Partikel angewiesen. . Im Teil IV der Arbeit wurden auf der Basis des zuvor vorgestellten Datensatzes und der hierfür entwickelten Verfahren (Algorithmen) weitere Auswertungen zu unterschiedlichen, für die Meteorologie interessanten Themengebieten, vorgestellt und ihre Ergebnisse charakterisiert. . In Kapitel 6.1 wurde mit Hilfe von Auswertegleichungen aus den in dieser Arbeit erstellten Messungen des Sieben-Sensor-Bilanzphotometers und den Messungen des Aerosolphotometers die Volumenabsorptionsrate solarer Strahlung der bodennahen Partikel und die daraus resultierende Erwärmungsrate der Luft berechnet. Die Ergebnisse wurden mit Literaturwerten anderer Messkampagnen verglichen. Insbesondere konnte ein interessantes Ergebnis von Hänel
Li6UO6 has a reversible phase transformation at 680°C and decomposes above about 850°C. At high pressure the low temperature modification becomes unstable because of an invariant point in the system Li2O—Li4UO5 at approximately 13 Kb and 620°C. β-Li6UO6 has a triclinic unit cell with a = 5.203, b= 5.520, c = 5.536 Å, α = 114.7, β = 120.7 and γ = 75.5°. The close relationship between the crystal structures of Li6TeO6 and Li6UO6 is also suggested from similar infrared spectra and from partial solid solution Li6UO6—Li6TeO6.
Seit nunmehr 20 Jahren findet regelmäßig alle zwei Jahre das Symposium "Tektonik — Strukturgeologie — Kristallingeologie" (TSK) statt. Die Tagung soll insbesondere jungen Nachwuchswissenschaftlern die Möglichkeit bieten, ihre Ergebnisse zu diskutieren und einem breiten Fachpublikum vorzustellen. Dies ist natürlich besonders attraktiv, wenn auch die ‚alten Hasen‘ der Zunft eifrig dabei sind.
In diesem Jahr wird schon TSK 11 — nach Tübingen, Erlangen, Graz, Frankfurt, Salzburg, Freiberg, Freiburg und Aachen nun zum zweiten Mal nach 1994 wieder in Göttingen durchgeführt. Wir freuen uns, auch dieses Mal wieder ein vielseitiges Tagungsprogramm präsentieren zu können. Die vorgestellten Arbeiten befassen sich mit Geländebeobachtungen, Laboranalysen und -experimenten bis hin zu Computermodellierungen. Im Maßstab reichen sie vom submikroskopischen Bereich bis hin zu ganzen Orogenen. Dabei werden sowohl duktile als auch spröde Deformationsprozesse beleuchtet. Regionale Geologie ist ebenso Thema wie auch eher angewandte Fragestellungen.
Um die einzelnen Beiträge schnell auffinden zu können, wurden diese alphabetisch nach Erstautoren geordnet. Aus Zeitgründen konnte nur der kleinere Teil der mehr als einhundert eingegangen Beiträge in das Vortragsprogramm aufgenommen werden. Auf parallele Vortragssitzungen haben wir bewusst verzichtet. Besonderen Raum für anregende Diskussionen sollen auch die thematisch zusammengestellten Postersitzungen bieten, für die wir spezielle Zeiten eingeräumt haben. Hierzu werden Poster jeweils vorher im Plenum kurz vorgestellt.
Die eingegangenen Manuskripte wurden, wie bei TSK üblich, für die Publikation keinem Gutachterverfahren unterzogen. Daher sind die jeweiligen Autoren allein für den Inhalt verantwortlich. ...
In der Stratosphäre finden eine Reihe von dynamischen und chemischen Prozessen statt, die u.a. den Abbau von Ozon beeinflussen. Um die langfristigen Veränderungen in der Stratosphäre untersuchen zu können müssen die Abhängigkeit dieser Prozesse von Raum und Zeit bekannt sein. In dieser Arbeit wird eine Untersuchung zur Variabilität der Stratosphäre auf der Grundlage der Varianz von Tracern, die in Form der „Equivalent Displacement Height“, kurz: EDH, dargestellt wird, vorgestellt. Die EDH ist tue mit Hilfe des lokalen vertikalen Gradienten normierte lokale Standardabweichung des Mischungsverhältnisses eines Tracers und besitzt die Dimension einer Länge. Durch die Normierung kann die Varianz verschiedener Tracer miteinander verglichen werden. Mit dem Konzept ist allerdings nur die Diagnose der Variabilität möglich und keine Quantifizierung der dafür verantwortlichen Prozesse. Für die Fragestellung werden drei Datensätze ausgewertet. Ein Datensatz ist mit Hilfe eines kryogenen Luftprobensammlers entstanden. Die Berechnungen iii dieser Arbeit zeigen, dass die zeitliche und räumliche Abdeckung dieses Datensatzes zu niedrig ist, um mit ihm eine repräsentative Aussage über die Varianz von Spurengasen in der Stratosphäre treffen zu können. Eine bessere zeitliche und räumliche Abdeckung besitzt der Datensatz des Satellitenexperimentes HA-LOE. Dieser wird dazu verwendet die monatlichen Verteilungen der mittleren EDH von CH4 und O3 in einem Höhenbereich zwischen 19 und 50 km für einen Zeitraum von 1993 bis 2000 zu berechnen. Die mittlere EDH von OH4 besitzt über den Hemisphären jeweils einen unterschiedlichen Jahresgang. Die Diskussion zeigt, dass dieser hemisphärische Unterschied auf die verschiedenen dynamischen Bedingung in der Stratosphäre über den Hemisphären zurückgeführt werden kann, vor allem auf die Existenz eines stabileren und langlebigeren Polarwirbels in der Südhemisphäre. Im Gegensatz dazu zeigt die mittlere EDH von O3 über beiden Hemisphären einen vergleichbaren Jahresgang, mit minimalen Werten der Varianz während der Sommermonate, wenn die Ausbreitung planetarer Wellen in die Stratosphäre durch die vorherrschende Ostwindzirkulation behindert wird. Dieser Jahresgang steht in Verbindung mit den chemischen und dynamischen Prozessen bzw. der Kombination, welche die Verteilung und Varianz von O3 in der Stratosphäre kontrollieren. Eine eindeutige Trennung der einzelnen Effekte ist dabei allerdings nicht möglich. Der Datensatz des Simulationsmodell KASIMA enthält die Verteilung von CH4 und O3 mit der höchsten zeitlichen und räumliche Abdeckung aller drei Datensätze. Ein Vergleich zwischen den daraus berechneten Verteilungen der mittleren EDH beider Spurengase mit den HALOE-Daten soll helfen, die Varianz welche durch das Modell simuliert wird, mit der gemessenen zu vergleichen. Für das O3 wird eine gute Übereinstimmung zwischen der modellierten und gemessenen Varianz gefunden. Diese guten Übereinstimmungen ergeben sich für CH4 nicht. Aufgrund der unterschiedlichen chemischen Eigenschaften der beiden Tracer wird aus den Ergebnissen geschlossen, dass das Modell die chemischen Prozesse besser simuliert als den atmosphärischen Transport. Mit Hilfe von drei Fallstudien werden weitere Möglichkeiten aufgezeigt. die mit dem Konzept und den Datensätze von HALOE und KASIMA noch bestehen. In der ersten Fallstudie werden anhand der Verteilungen der EDH von CH4 aus dem März 1996 und 1997 die Auswirkungen vorm zwei unterschiedlichen meteorologischen Situation diskutiert, wobei ein eindeutiger Zusammenhang festgestellt wird. In einer zweiten Fallstudie wird der Frage nachgegangen, ob die Normierung auf den vertikalen Gradienten bei der Berechnung der EDH sinnvoll ist, da horizontale Transportprozesse in der Stratosphäre dominieren. Es wird daher zum Vergleich die „Equivalent Displacement Length (EDL)“ von CH4 berechnet, bei der eine Normierung der Varianz auf den horizontalen Gradienten erfolgt. In der dritten Fallstudie wird die Verteilung der mittleren EDH von N20, welche ebenfalls mit dem Datensatz von KASIMA berechnet worden ist, mit der von CH4 verglichen.
Aus Franken wird die Entwicklung quartärer Hohlformen beschrieben, deren Rekonstruktion mit Hilfe lößstratigraphischer Methoden (fossile Böden, Tuffbänder, Umlagerungszonen etc.) möglich ist. Bei vielen Formen zeigt sich, daß sie bereits größere Vorläuferformen präwürmzeitlichen Alters hatten. Die Entwicklung während des Würms läßt sich an manchen Beispielen in besonders instruktiver Weise verfolgen. Zu Beginn des Würms, im unteren Mittelwürm und im unteren Jungwürm dominierte zeitweise die Abtragung und Verlagerung. Im oberen Mittelwürm sowie im oberen Jungwürm herrschte äolische Lößsedimentation vor. Diese Ergebnisse stimmen gut mit den bereits aus anderen mitteleuropäischen Lößgebieten bekannten Befunden überein. Mit dem Trockental-System von Helmstadt wird die Entwicklung von Hohlformen beschrieben, deren Anlage bis in das ältere Pleistozän zurückreicht.
Das Cranium eines fossilen Hominiden des Formenkreises Homo sapiens sapiens wurde relativ-geologisch sowie absolut durch Radiokohlenstoff und Aminosäuren auf ungefähr 31 000 Jahre B.P. datiert. Andere absolute sowie relative Daten an Mollusken und Mammutzähnen in überlagernden jüngeren Straten datieren auf 18 000 — 21000 und 16 000 Jahren B.P. Geomorphologische und geophysikalische Datierungen stimmen somit gut überein. Er ist der älteste datierte und früheste Bewohner Zentraleuropas, der dem Homo sapiens sapiens angehört.
Die Frage, ob das Klima extremer wird, beschäftigt Wissenschaft und Öffentlichkeit mit zunehmender Intensität. Daher ist hier eine extremwertstatistische Untersuchung hinsichtlich Niederschlag und Temperatur durchgeführt worden. Dabei werden, entsprechend IPCCEmpfehlungen, für die untersuchten Zeitreihen obere und untere Schwellenwerte festgelegt. Durch Auszählen kann dann ermittelt werden, wie oft die entsprechende Schranke über- oder unterschritten wurde (relativer Extremwert). Das Verhältnis der Anzahl der relativen Extremwerte zu den Gesamtwerten nennt man empirische Extremwerthäufigkeit. Darüber hinaus wurden Häufigkeitsverteilungen an die Datensätze angepasst, aus denen vorher der Jahresgang eliminiert wurde. Über diese Häufigkeitsverteilungen bestimmt man die theoretische Über- oder Unterschreitungswahrscheinlichkeit der jeweiligen Schranke, und vergleicht diese mit der empirischen. Diese Daten bieten auch die Möglichkeit, weitere wahrscheinlichkeitstheoretische Größen (Risiko, Wartezeitverteilung, Wiederkehrzeit) zu bestimmen. Das Verfahren wird auf 78 100-jährige Zeitreihen des Niederschlags und 10 100-jährige Zeitreihen der Temperatur in Deutschland angewendet. Dabei ist zu beachten, dass eine Übereinstimmung von empirischen und theoretischen Ergebnissen nur im statistischen Mittel zu erwarten ist. Die Untersuchungen zeigen, dass die ersten 10 bis 15 Jahre des letzten Jahrhunderts, sowohl bei den Niederschlägen als auch bei der Temperatur, nicht so extrem gewesen sind wie der Rest des Jahrhunderts. Bei den Niederschlagsdaten zeigt sich darüber hinaus um die Jahrhundertmitte ein etwa 10-jähriger Zeitraum mit hoher Niederschlagsvariabilität. Für die Abschätzung der Wahrscheinlichkeit des Überschreitens von Schranken bei Niederschlagsdaten ist die angepasste Gumbelverteilung am besten geeignet. Der Unterschied zu den anderen angepassten Verteilungen ist um so klarer, je höher die Schranke gewählt wird. Für die Abschätzung der Wahrscheinlichkeit des Unterschreitens von Schranken bei Temperaturdaten ist die angepasste Weibullverteilung am besten geeignet. Kein klares Bild ergibt sich bei den Kombinationen untere Schranke und Niederschlagsdaten sowie obere Schranke und Temperaturdaten. Die Abschätzung der Eintrittswahrscheinlichkeit und damit verbunden die Bestimmung der Wiederkehrzeit und des Risikos ist in allen Fällen um so besser, je geringer der Jahresgang der Variabilität der untersuchten Größe ist. Beim Trend der Wiederkehrzeit zeigt sich bei den Niederschlagsdaten und der unteren Schranke im äußersten Westen Deutschlands ein Rückgang trockener Ereignisse. Ansonsten erkennt man nur schwache Änderungen. Für obere Schranken zeigt sich im Westen Deutschlands ein Rückgang der Wiederkehrzeit, also ein Trend zu häufigeren extremen Niederschlägen, mit einem Maximum im östlichen Nordrhein-Westfalen. Im Osten dagegen ermittelt man einen Rückgang extremer Niederschläge und damit einen Trend zu trockenerer Witterung, am stärksten ausgeprägt im westlichen Erzgebirge. Für die Temperaturdaten zeigt sich in fast ganz Deutschland für untere Schranken ein Anstieg der Wiederkehrzeit. Extrem niedrige Temperaturen treten also tendenziell seltener auf. Die Ausnahme bilden hier nur, je nach zugrunde liegender Verteilung, der (äußerste) Norden und Osten Deutschlands. Die gleiche geographische Unterteilung, jedoch mit umgekehrtem Trend, zeigt sich bei den oberen Schranken. Extrem warme Ereignisse treten, mit Ausnahme des Nordostens, tendenziell häufiger auf. Die stärkste Zunahme im Trend der warmen Ereignisse zeigt sich dabei im Südwesten Deutschlands.
The present study was elaborated within the scope of the INTAFERE (Integrated Analysis of Mobile Organic Foreign Substances in Rivers) project which investigates the occurrence of xenobiotics in small freshwater streams with particular consideration of social impact factors. The aim of this study is to investigate the seasonal and spatial variance of organic micropollutants in small fresh water streams and to identify possible sources and sinks. Therefore four small freshwater river systems in Hesse, Germany, have been investigated with respect to common organic pollutants such as: the organophosphates tri-n-butyl phosphate (TBP), tris(2-butoxyethyl)phosphate (TBEP), tris(2-chloroethyl)phosphate (TCEP), tris(1-chloro-2-propyl)phosphate (TCPP), and tris(1,3-dichloro-2-propyl)phosphate (TDCPP), the synthetic musk fragrances 1,3,4,6,7,8-hexahydro-4,6,6,7,8,8-hexa-methylcyclopenta-[g]-2-benzopyran (HHCB) and 7-acetyl-1,1,3,4,4,6-hexamethyl-1,2,3,4-tetrahydronaphthalene (AHTN), the endocrine disruptors bisphenol A (BPA), 4-tert-octylphenol (OP) and the technical isomer mixture of 4-nonylphenol (NP), the herbicide terbutryn [2-(t-butylamino)-4-(ethylamino)-6-(methylthio)-s-triazine] as well as the insect repellent N,N-diethyl-m-toluamide (DEET). Water samples were collected in the time span from September 2003 to September 2006 at 26 sampling locations. The samples were extracted with solid phase extraction (SPE) and analyzed by coupled gas chromatography-mass spectrometry (GC-MS). For quantification the internal standard method was used. The results of the study showed an ubiquitous occurrence of organic pollutants in the fresh water streams of the study area. The organophosphates have been detected in 90 % of the water samples with mean concentrations of 502 ng/l (TCPP), 276 ng/l (TBP), 183 ng/l (TBEP), 118 ng/l (TCEP) and 117 ng/l (TDCPP). Sewage treatment plant (STP) effluents were identified as the dominating source for the chlorinated organophosphates as well as for the synthetic musk fragrances and the insect repellent DEET in the river systems. Consequently the highest concentrations were observed in the Schwarzbach system characterized by the highest proportion of waste water compared to the other river systems. Mean concentration levels of the synthetic musk fragrances HHCB and ATHN were 141 ng/l and 46 ng/l, respectively and 124 ng/l in case of DEET. The synthetic musk fragrances showed a clear seasonal trend with significantly lower concentrations in summer times compared to winter times, which is ascribed to stronger photodegradation and volatization during summer times. In contrast, mean DEET concentrations and loads were significantly higher in summer than in autumn, winter and spring, in parallel with the main insect season. The concentrations of the endocrine disruptors BPA, NP and OP in the river water samples ranged from <20 ng/l to 1927 ng/l, <10 ng/l to 770 ng/l, and <10 ng/l to 420 ng/l, respectively. Whereas OP was present in about 2/3 of the samples, NP and BPA could only be detected in 56% and 13% of the water samples, respectively. BPA levels exceeded in two samples the predicted no-effect concentration (PNEC) for water organisms. In case of NP, highest concentrations and loads were found in September 2003 and decreased significantly since then. In contrast, concentrations and loads of OP which serves in a similar application field remained nearly constant during the sampling period. The decrease of NP can be attributed to the implementation of the European Directive 2003/53/EG, which restricts the use of nonylphenols and nonylphenol ethoxylates since January 2005. However, at the end of the sampling period in September 2006, NP could still be detected at mean concentrations of 18 ng/l in the river waters of the sampling area. Furthermore, absence of NP in several samples from associated STP effluents indicate that the STPs cannot be the only sources for NP found in the river water. The herbicide terbutryn was present in the rivers during the whole sampling period from September 2003 to September 2006 despite a ban on its use as a herbicide from January 2004 on. Terbutryn levels ranged from < 4 ng/l to 5600 ng/l, showing a clear spatial pattern with high terbutryn concentrations in the Weschnitz and Modau river systems and significantly lower terbutryn levels in Schwarzbach and Winkelbach. Results from the analysis of two STP effluents discharging into the Weschnitz and the Modau, respectively, indicate that terbutryn enters the rivers from this source. Furthermore, terbutryn concentrations and loads showed a clear seasonal trend with significantly higher levels in summer and autumn. Obviously, the ban on agricultural use of terbutryn at the end of 2003 had no discernable influence on terbutryn concentration in the rivers because there was no trend of decreasing.
Laut jüdischem Kalender entstand die Welt vor genau 5778 Jahren, nach der Bibel vor 6021 Jahren. Doch als Forscher begannen, auf und in der Erde selbst nach Spuren ihres Alters zu suchen, mussten sie die Zahl immer weiter nach oben korrigieren. Nach heutigen Datierungsmethoden ist unser Planet zwischen 4,5 und 4,6 Milliarden Jahre alt.
Wolken haben einen maßgeblichen Einfluss auf den Wasserhaushalt der Erde, das Wettergeschehen und das Klima. Sie wissenschaftlich zu beschreiben, ist schwierig – und das erschwert die Niederschlagsvorhersage ebenso wie die Klimamodellierung. Wichtig für die Entstehung von Regen in unseren Breiten sind Eispartikel. Sie machen einen großen Teil der Wolken aus. Doch wie bilden sie sich, und warum sind sie für viele physikalische Prozesse in den Wolken unentbehrlich? Und schließlich: Wirkt sich menschliches Handeln auf die Wolken aus?
wo assumptions underlie current models of the geographical ranges of perennial plant species: 1. current ranges are in equilibrium with the prevailing climate, and 2. changes are attributable to changes in macroclimatic factors, including tolerance of winter cold, the duration of the growing season, and water stress during the growing season, rather than to biotic interactions. These assumptions allow model parameters to be estimated from current species ranges. Deterioration of growing conditions due to climate change, e.g. more severe drought, will cause local extinction. However, for many plant species, the predicted climate change of higher minimum temperatures and longer growing seasons means, improved growing conditions. Biogeographical models may under some circumstances predict that a species will become locally extinct, despite improved growing conditions, because they are based on an assumption of equilibrium and this forces the species range to match the species-specific macroclimatic thresholds. We argue that such model predictions should be rejected unless there is evidence either that competition influences the position of the range margins or that a certain physiological mechanism associated with the apparent improvement in growing conditions negatively affects the species performance. We illustrate how a process-based vegetation model can be used to ascertain whether such a physiological cause exists. To avoid potential modelling errors of this type, we propose a method that constrains the scenario predictions of the envelope models by changing the geographical distribution of the dominant plant functional type. Consistent modelling results are very important for evaluating how changes in species areas affect local functional trait diversity and hence ecosystem functioning and resilience, and for inferring the implications for conservation management in the face of climate change.
Im Zusammenhang mit der Diskussion des globalen Klimawandels stellt sich die Frage, ob extreme Wettersituationen wahrscheinlicher werden. Diese Frage ist wegen der Gefahren, die von extremen Wettersituationen ausgehen, weit über die Grenzen der Meteorologie hinaus von Bedeutung. Dennoch findet man in der Fachliteratur sehr wenige Beiträge zu diesem Thema. Dies liegt im wesentlichen daran, dass bei der Analyse von Extremwerten im allgemeinen von konstanten Überschreitungswahrscheinlichkeiten für Schwellwerte ausgegangen wird. Wenn diese Arbeitshypothese wahr ist, können Wiederkehrzeiten einfach als Kehrwert der Eintrittswahrscheinlichkeit angesehen werden. Dann – nur dann - macht der Ausdruck Jahrhundertereignis einen Sinn, der über den Moment hinaus reicht. In diesem Beitrag soll zunächst das Vokabular zur Beschreibung von Extremwerten (hier als Werte oberhalb von Schwellen) vorgestellt bzw. in Erinnerung gerufen werden. Diese werden auf den einfachen Fall stationärer Zeitreihen angewendet, woraus die üblichen vereinfachten Zusammenhänge folgen. Im Anschluss wird ein künstliches Beispiel einer Variable mit veränderlichem Mittelwert untersucht. Dieses zeigt deutlich, wie stark die Kenngrößen des Extremverhaltens von Schwankungen im Mittelwert abhängen können. Bei der Analyse klimatologischer Beobachtungsdaten, steht man vor dem Problem, dass kein einfaches Modell für die Generierung der Zeitreihe zur Verfügung steht, woraus man die Eigenschaften des Extremverhaltens ableiten könnte. Gelingt es jedoch, die Beobachtungen mit Hilfe einfacher empirischer Modellgleichungen hinreichend gut zu beschreiben, so ist der Weg zur Analyse der Extremwerte in instationären Zeitreihen geebnet. Dabei braucht man nicht, wie oft üblich, nur die (relativ wenigen) (Extremwerte für die Analyse des Extremverhaltens heranzuziehen, sondern kann die gesamte von der Zeitreihe zur Verfügung gestellte Information nutzen. Diese Strategie wird exemplarisch an zwei Zeitreihen vorgestellt. Aus Gründen der Einfachheit sind dies Monatsmittel bzw. Jahresmittel der Temperatur. In diesen sind eindeutige Änderungen sowohl im mittleren als auch im extremen Verhalten sichtbar. Daraus kann zwar geschlossen werden, dass sich die Wettersituationen im Laufe der Zeit verändert haben, nicht aber wie. Ein häufigeres Auftreten extremer Mittelwerte kann bedeuten, dass warme Wettersituationen häufiger oder wärmer geworden sind, oder das kalte Wettersituationen wärmer oder weniger geworden sind, oder aber, dass eine Überlagerung verschiedener Veränderungen zu diesem Ergebnis führt. So kann die Frage, ob extreme Wettersituationen wahrscheinlicher werden, in diesem Beitrag nicht abschließend geklärt werden, jedoch wird ein Werkzeug vorgestellt, das geeignet erscheint, diese Frage zu beantworten.
Water footprints have been proposed as sustainability indicators, relating the consumption of goods like food to the amount of water necessary for their production and the impacts of that water use in the source regions. We further developed the existing water footprint methodology, by globally resolving virtual water flows from production to consumption regions for major food crops at 5 arcmin spatial resolution. We distinguished domestic and international flows, and assessed local impacts of export production. Applying this method to three exemplary cities, Berlin, Delhi and Lagos, we find major differences in amounts, composition, and origin of green and blue virtual water imports, due to differences in diets, trade integration and crop water productivities in the source regions. While almost all of Delhi's and Lagos' virtual water imports are of domestic origin, Berlin on average imports from more than 4000 km distance, in particular soy (livestock feed), coffee and cocoa. While 42% of Delhi's virtual water imports are blue water based, the fractions for Berlin and Lagos are 2 and 0.5%, respectively, roughly equal to the water volumes abstracted in these two cities for domestic water use. Some of the external source regions of Berlin's virtual water imports appear to be critically water scarce and/or food insecure. However, for deriving recommendations on sustainable consumption and trade, further analysis of context-specific costs and benefits associated with export production will be required.
Water footprints have been proposed as sustainability indicators, relating the consumption of goods like food to the amount of water necessary for their production and the impacts of that water use in the source regions. We have further developed the existing water footprint methodology by globally resolving virtual water flows and import and source regions at 5 arc minutes spatial resolution, and by assessing local impacts of export production. Applying this method to three exemplary cities, Berlin, Delhi and Lagos, we find major differences in amounts, composition, and origin of green and blue virtual water imports, due to differences in diets, trade integration and crop water productivities in the source regions. While almost all of Delhi's and Lagos' virtual water imports are of domestic origin, Berlin on average imports from more than 4000 km distance, in particular soy (livestock feed), coffee and cocoa. While 42% of Delhi's virtual water imports are blue water based, the fractions for Berlin and Lagos are 2% and 0.5%, respectively, roughly equal to local drinking water abstractions of these cities. Some of the external source regions of Berlin's virtual water imports appear to be critically water scarce and/or food insecure. However for deriving recommendations on sustainable consumption and trade, further analysis of context-specific costs and benefits associated with export production will be required.
Wasser weltweit : wie groß sind die globalen Süßwasserressourcen, und wie nutzt sie der Mensch?
(2008)
Ohne Wasser kein Leben – die ersten organischen Moleküle entwickelten sich im Wasser, aus Wasser plus Kohlenstoff und Stickstoff, und auch heute brauchen Pflanzen, Tiere und Menschen viel Wasser, um zu überleben. Die Erde ist der einzige Planet mit flüssigem Wasser und der einzige Planet, auf dem es Leben gibt, zumindest in unserem Sonnensystem. Zwei Umstände bewirken gemeinsam, dass nur die Erde die richtige Temperatur für flüssiges Wasser an ihrer Oberfl äche hat: ihr Abstand zur Sonne und ihre Masse. Aufgrund ihrer ausreichend großen Masse kann sie eine Atmosphäre halten, die die mittlere Oberflächentemperatur von –18 °C auf +15 °C erhöht. Nur daher konnte sich im Frühstadium der Erdentstehung das Wasser, das in großen Mengen aus dem Erdinnern ausgaste, an der Oberfläche als flüssiges Wasser in den Ozeanen sammeln.
Wenn Klimaforscher wissen wollen, was die Zukunft
bringt, schauen sie gern in die Vergangenheit. Während
der Kreidezeit herrschte auf der Erde ein Treibhausklima
mit atmosphärischen CO2-Gehalten, die weitaus
höher waren als heute. Welche Konsequenzen das für
die Meeresströmungen und die marinen Ökosysteme
hatte, können Geowissenschaftler heute nicht mehr direkt
messen. Bei der Spurensuche helfen ihnen die
Fossilien mikroskopisch kleiner Einzeller, deren wunderschöne
Kalkschalen als Klimagedächtnis dienen.
Den Löwen die Freiheit? Raus aus Zirkus und Zoo? Was würde ein Löwe sagen, könnte er nur reden? Der Paläontologe Joachim Scholz meint in Anlehnung an Malraux: Man lasse den Löwen zu einem Gegenstand der Forschung werden, statt zu einem solchen der Offenbarung. Jeder Löwe hat eine eigene Persönlichkeit, kein Tier gleicht dem anderen. Scholz regt Langzeitstudien nicht nur in Zoos, sondern auch im Zirkus an. Denn in der sogenannten Freiheit könnte es Löwen schon bald nicht mehr geben.
140 Liter Wasser werden für die Herstellung einer Tasse Kaffee benötigt, 1.300 Liter Wasser für ein Kilo Gerste und 3.400 Liter Wasser für ein Kilo Reis. Diese Zahlen mögen im ersten Moment unglaubwürdig erscheinen, doch sie entsprechen der Wirklichkeit. Für die Herstellung von nahezu allen Produkten wird Wasser in teils sogar sehr großen Mengen benötigt. In dem Endprodukt jedoch findet sich meist nur ein kleiner Teil des ursprünglich eingesetzten Wassers in seiner physischen Form wieder. Der überwiegende Anteil wurde während des Produktionsprozesses verdunstet oder zur Kühlung eingesetzt und wird daher als „virtuelles Wasser“ bezeichnet. Aufgrund des Exports und Imports von Produkten im Zuge des internationalen Handels kommt es somit auch zu Strömen von virtuellem Wasser zwischen den einzelnen Ländern. In dieser Bachelorarbeit wird der virtuelle Wasserhandel mit 23 verschiedenen Feldfrüchten mit dem Fokus auf Deutschland für den Zeitraum von 1998 bis 2002 untersucht. In die Berechnung dieser virtuellen Wasserströme ist ein neuartiges Modell eingegangen, das Global Crop Water Model (GCWM), welches den virtuellen Wassergehalt für unterschiedliche Feldfruchtgruppen global für jede 5-Minuten-Zelle auf Basis detaillierter Daten berechnet. Dank dieses Modells ist es möglich, eine Trennung zwischen dem virtuellen Wasser, welches aus der Nutzung des Niederschlagswassers und dem virtuellen Wasser, welches aus der Bewässerung von Ackerflächen resultiert, vorzunehmen und diese getrennt von einander zu analysieren. Mittels der Verwendung der Handelsstatistik Comtrade der Vereinten Nationen lässt sich aus den Ergebnissen des GCWM der virtuelle Wasserhandel darstellen. Es zeigt sich, dass Deutschland das meiste Wasser in seiner virtuellen Form nach Algerien, Saudi-Arabien, Belgien und in die Niederlande exportiert, wohingegen aus Brasilien, den USA, Frankreich und der Elfenbeinküste die größten virtuellen Wassermengen importiert werden.
Die Arbeitsgruppe für Chemie und Physik der Atmosphäre am Institut für Meteorologie und Geophysik der Johann Wolfgang Goethe-Universität Frankfurt befasst sich unter anderem mit der Entwicklung einer Continous Flow Diffusion Chamber zur Erfassung und Klassifikation von CCN und IN. Diese Partikel besitzen eine Größe im Mikrometerbereich und sind somit nicht leicht zu erfassen und zu unterscheiden. Bei vergleichbaren Versuchen beschränkte sich bisher die automatische Auswertung auf die Anzahl der Partikel. Es gibt noch kein Verfahren, welches eine Klassifikation in CCN und IN videobasiert vornehmen kann. Es lag ebenfalls kein reales Bildmaterial vor, welches zu Testzwecken für die Klassifikation geeignet gewesen wäre. Basierend auf den physikalischen und meteorologischen Grundlagen wurde mittels Raytracing ein künstlicher Bilddatensatz mit kleinen Eiskristallen und Wassertröpfchen unter verschiedenen Betrachtungsverhältnissen erstellt. Anhand dieses Bilddatensatzes wurde dann ein Verfahren zur Klassifikation entwickelt und prototypisch implementiert, welches dies mittels Methoden aus der graphischen Datenverarbeitung und durch Berechnung der Momente vornimmt. Es war notwendig, Verfahren aus der Kameratechnik zu betrachten, die später in der realen Anwendung mit sehr kurzzeitiger Belichtung, geeigneter Optik und hochauflösender CCD-Kamera detaillierte Bilder von Objekten in der Größe von einigen 10µm liefern können.
Die drei Atolle Glovers Reef, Lighthouse Reef und Turneffe Islands vor der belizischen Küste im Karibischen Meer unterscheiden sich in Geomorphologie, Lagunentiefe, Sedimentbeschaffenheit, Mangroven- und Seegrasbewuchs, Wellen- und Strömungseinfluss sowie in ihren Sedimentationsraten und ihrem Entstehungsalter. Um herauszufinden, ob die Bivalven-Vergesellschaftungen verschiedener Lagunenzonen diese Unterschiede widerspiegeln, wurden 32 bis 44 rezente Sedimentproben auf jedem Atoll entnommen (Gesamtprobenzahl: 111). Deren Datensatz von insgesamt 32 122 Bivalvenschalen wurde anschließend Q-Mode-Cluster-Analysen unterzogen. Neben der Verteilung charakteristischer Arten wurde auch die Verteilung von Bivalven unterschiedlicher Lebens- und Ernährungsweise untersucht. Chione cancellata, ein flach grabender Suspensionsfresser, besiedelt bevorzugt (1) flache, wellen- und strömungsbeeinflusste Lagunenzonen. Die Sedimente (2) sehr hoch energetischer Flachwasserbereiche enthalten zudem hohe Anteile tiefer grabender Suspensionsfresser der Gattung Ervilia. Im (3) Rückriffbereich und am Atollrand sind tief grabende, Detritus fressende Telliniden häufig. Gouldia cerina, wie Chione ein flach grabender Suspensionsfresser, ist typisch für (4) geschlossene Flachwasserbereiche, während die Chemosymbionten-tragende, ebenfalls flach grabende Parvilucina sp. A. vorwiegend in (5) geschlossenen, tiefen Lagunenzonen vorkommt. Charakteristisch für (6) Mangrovengebiete ist Crassinella lunulata, ein sehr flach grabender Suspensionsfresser. Die Anteile taphonomischer Signaturen auf den Schalen, wie Bohrspuren, Inkrustationen, Fragmentierung und Abrasion sowie Diversität, Evenness und Richness sind auf Glovers Reef am höchsten und nehmen über Lighthouse Reef nach Turneffe Islands ab. Da in die gleiche Richtung zunehmende Sedimentationsraten auf den drei Atollen zu verzeichnen sind (GISCHLER 2003), ist vermutlich der abnehmende Effekt des Time-averaging für diesen Trend verantwortlich. Neben der rezenten Fauna wurden auch die Bivalven aus Vibrationsbohrkernen (ein Kern von jedem Atoll) untersucht. Die fossilen Bivalven-Vergesellschaftungen der inneren Lagunen von Glovers Reef, Lighthouse Reef und Turneffe Islands zeigen seit deren Entstehung eine für das jeweilige Atoll typische Fauna, die sich seit ~7000 YBP weiter entwickelte. Sie reflektieren damit die bereits im Anfangsstadium charakteristischen Unterschiede der drei Atolle.
When assessing global water resources with hydrological models, it is essential to know about methodological uncertainties. The values of simulated water balance components may vary due to different spatial and temporal aggregations, reference periods, and applied climate forcings, as well as due to the consideration of human water use, or the lack thereof. We analyzed these variations over the period 1901–2010 by forcing the global hydrological model WaterGAP 2.2 (ISIMIP2a) with five state-of-the-art climate data sets, including a homogenized version of the concatenated WFD/WFDEI data set. Absolute values and temporal variations of global water balance components are strongly affected by the uncertainty in the climate forcing, and no temporal trends of the global water balance components are detected for the four homogeneous climate forcings considered (except for human water abstractions). The calibration of WaterGAP against observed long-term average river discharge Q significantly reduces the impact of climate forcing uncertainty on estimated Q and renewable water resources. For the homogeneous forcings, Q of the calibrated and non-calibrated regions of the globe varies by 1.6 and 18.5 %, respectively, for 1971–2000. On the continental scale, most differences for long-term average precipitation P and Q estimates occur in Africa and, due to snow undercatch of rain gauges, also in the data-rich continents Europe and North America. Variations of Q at the grid-cell scale are large, except in a few grid cells upstream and downstream of calibration stations, with an average variation of 37 and 74 % among the four homogeneous forcings in calibrated and non-calibrated regions, respectively. Considering only the forcings GSWP3 and WFDEI_hom, i.e., excluding the forcing without undercatch correction (PGFv2.1) and the one with a much lower shortwave downward radiation SWD than the others (WFD), Q variations are reduced to 16 and 31 % in calibrated and non-calibrated regions, respectively. These simulation results support the need for extended Q measurements and data sharing for better constraining global water balance assessments. Over the 20th century, the human footprint on natural water resources has become larger. For 11–18% of the global land area, the change of Q between 1941–1970 and 1971–2000 was driven more strongly by change of human water use including dam construction than by change in precipitation, while this was true for only 9–13 % of the land area from 1911–1940 to 1941–1970.
When assessing global water resources with hydrological models, it is essential to know the methodological uncertainties in the water resources estimates. The study presented here quantifies effects of the uncertainty in the spatial and temporal patterns of meteorological variables on water balance components at the global, continental and grid cell scale by forcing the global hydrological model WaterGAP 2.2 (ISI-MIP 2.1) with five state-of-the-art climate forcing input data-sets. While global precipitation over land during 1971–2000 varies between 103 500 and 111 000 km3 yr−1, global river discharge varies between 39 200 and 42 200 km3 yr−1. Temporal trends of global wa- ter balance components are strongly affected by the uncertainty in the climate forcing (except human water abstractions), and there is a need for temporal homogenization of climate forcings (in particular WFD/WFDEI). On about 10–20 % of the global land area, change of river discharge between two consecutive 30 year periods was driven more strongly by changes of human water use including dam construction than by changes in precipitation. This number increases towards the end of the 20th century due to intensified human water use and dam construction. The calibration approach of WaterGAP against observed long-term average river discharge reduces the impact of climate forcing uncertainty on estimated river discharge significantly. Different homgeneous climate forcings lead to a variation of Q of only 1.6 % for the 54 % of global land area that are constrained by discharge observations, while estimated renewable water resources in the remaining uncalibrated regions vary by 18.5 %. Uncertainties are especially high in Southeast Asia where Global Runoff Data Centre (GRDC) data availability is very sparse. By sharing already available discharge data, or installing new streamflow gauging stations in such regions, water balance uncertainties could be reduced which would lead to an improved assessment of the world’s water resources.
Die kumulative Dissertation beschäftigt sich mit der atmosphärischen Konzentration von Eiskeimen, einer Unterklasse des atmosphärischen Aerosols, die bei der Eisbildung in Wolken eine zentrale Bedeutung besitzt. Messungen der Eiskeimkonzentration am Taunusobservatorium (Kleiner Feldberg) (nahe Frankfurt am Main) wurden mit dem Verfahren einer Vakuum-Diffusionskammer durchgeführt. Die Arbeit umfasst die Darstellung des angewandten Messverfahrens und die Analyse und Bewertung der Messergebnisse für den Raum Zentraleuropa, anhand von u.a. Rückwärtstrajektorien und Korrelationen zu aerosolphysikalischen Parametern. Ein signifikanter Einfluss von Mineralstaub-Ferntransport aus Wüstengebieten auf die Eiskeimkonzentration in Zentral-Europa wurde ermittelt.
This paper investigates the value of observed river discharge data for global-scale hydrological modeling of a number of flow characteristics that are e.g. required for assessing water resources, flood risk and habitat alteration of aquatic ecosystems. An improved version of the WaterGAP Global Hydrology Model (WGHM) was tuned against measured discharge using either the 724-station dataset (V1) against which former model versions were tuned or an extended dataset (V2) of 1235 stations. WGHM is tuned by adjusting one model parameter (γ) that affects runoff generation from land areas in order to fit simulated and observed long-term average discharge at tuning stations. In basins where γ does not suffice to tune the model, two correction factors are applied successively: the areal correction factor corrects local runoff in a basin and the station correction factor adjusts discharge directly the gauge. Using station correction is unfavorable, as it makes discharge discontinuous at the gauge and inconsistent with runoff in the upstream basin. The study results are as follows. (1) Comparing V2 to V1, the global land area covered by tuning basins increases by 5% and the area where the model can be tuned by only adjusting γ increases by 8%. However, the area where a station correction factor (and not only an areal correction factor) has to be applied more than doubles. (2) The value of additional discharge information for representing the spatial distribution of long-term average discharge (and thus renewable water resources) with WGHM is high, particularly for river basins outside of the V1 tuning area and in regions where the refined dataset provides a significant subdivision of formerly extended tuning basins (average V2 basin size less than half the V1 basin size). If the additional discharge information were not used for tuning, simulated long-term average discharge would differ from the observed one by a factor of, on average, 1.8 in the formerly untuned basins and 1.3 in the subdivided basins. The benefits tend to be higher in semi-arid and snow-dominated regions where the model is less reliable than in humid areas and refined tuning compensates for uncertainties with regard to climate input data and for specific processes of the water cycle that cannot be represented yet by WGHM. Regarding other flow characteristics like low flow, inter-annual variability and seasonality, the deviation between simulated and observed values also decreases significantly, which, however, is mainly due to the better representation of average discharge but not of variability. (3) The choice of the optimal sub-basin size for tuning depends on the modeling purpose. While basins over 60 000 km2 are performing best, improvements in V2 model performance are strongest in small basins between 9000 and 20 000 km2, which is primarily related to a low level of V1 performance. Increasing the density of tuning stations provides a better spatial representation of discharge, but it also decreases model consistency, as almost half of the basins below 20 000 km2 require station correction.
his paper investigates the value of observed river discharge data for global-scale hydrological modeling of a number of flow characteristics that are required for assessing water resources, flood risk and habitat alteration of aqueous ecosystems. An improved version of WGHM (WaterGAP Global Hydrology Model) was tuned in a way that simulated and observed long-term average river discharges at each station become equal, using either the 724-station dataset (V1) against which former model versions were tuned or a new dataset (V2) of 1235 stations and often longer time series. WGHM is tuned by adjusting one model parameter (γ) that affects runoff generation from land areas, and, where necessary, by applying one or two correction factors, which correct the total runoff in a sub-basin (areal correction factor) or the discharge at the station (station correction factor). The study results are as follows. (1) Comparing V2 to V1, the global land area covered by tuning basins increases by 5%, while the area where the model can be tuned by only adjusting γ increases by 8% (546 vs. 384 stations). However, the area where a station correction factor (and not only an areal correction factor) has to be applied more than doubles (389 vs. 93 basins), which is a strong drawback as use of a station correction factor makes discharge discontinuous at the gauge and inconsistent with runoff in the basin. (2) The value of additional discharge information for representing the spatial distribution of long-term average discharge (and thus renewable water resources) with WGHM is high, particularly for river basins outside of the V1 tuning area and for basins where the average sub-basin area has decreased by at least 50% in V2 as compared to V1. For these basins, simulated long-term average discharge would differ from the observed one by a factor of, on average, 1.8 and 1.3, respectively, if the additional discharge information were not used for tuning. The value tends to be higher in semi-arid and snow-dominated regions where hydrological models are less reliable than in humid areas. The deviation of the other simulated flow characteristics (e.g. low flow, inter-annual variability and seasonality) from the observed values also decreases significantly, but this is mainly due to the better representation of average discharge but not of variability. (3) The optimal sub-basin size for tuning depends on the modeling purpose. On the one hand, small basins between 9000 and 20 000 km2 show a much stronger improvement in model performance due to tuning than the larger basins, which is related to the lower model performance (with and without tuning), with basins over 60 000 km2 performing best. On the other hand, tuning of small basins decreases model consistency, as almost half of them require a station correction factor.
Diese Diplomarbeit untersucht die Güte eines globalen Datensatzes (IA), der die monatliche Ausdehnung der terrestrischen Oberflächengewässer für den Zeitraum von 1993 bis 2004 beinhaltet. IA ist aus komplementären, räumlich geringauflösenden Satellitendaten generiert. Die Wasserausdehnungen werden als prozentuale Flächenanteile von 0,5°-Gitterzellen angegeben. IA wäre durch seine monatliche Dynamik zur Kalibrierung und Validierung eines globalen Modells von temporären Überflutungsgebieten geeignet. Im Rahmen dieser Diplomarbeit werden die Wasserbedeckungen aus IA in einzelnen 0,5°-Zellen zu mehreren Zeitpunkten mithilfe von räumlich hochauflösenden Satellitenbildern des Enhanced Thematic Mapper Plus (ETM+) validiert. Aus Gründen der Effizienz (Minimierung des Speicheraufwands und der Verarbeitungszeit) wird nur ein einziger ETM+ Kanal im mittleren Infrarot zur Bestimmung der Wasserbedeckung verwendet: Band 5. Durch überwachte Klassifikationen wird der Anteil der Wasserflächen an der Gesamtfläche der 0,5°-Zellen ermittelt. Insgesamt werden 262 Klassifikationen in vier Untersuchungsgebieten durchgeführt. Zwischen den prozentualen Wasserbedeckungen aus IA und den ETM+ (Band 5)-Validierungsdaten werden häufige und unregelmäßige Abweichungen festgestellt. Die maximalen absoluten Abweichungen betragen mehr als 60%. Aufgrund dieser Ergebnisse sind die IA-Wasserausdehnungen nur sehr begrenzt als Validierungsdaten für die Modellierung von temporären Überflutungsgebieten geeignet.
The ENVISAT validation programme for the atmospheric instruments MIPAS, SCIAMACHY and GOMOS is based on a number of balloon-borne, aircraft, satellite and ground-based correlative measurements. In particular the activities of validation scientists were coordinated by ESA within the ENVISAT Stratospheric Aircraft and Balloon Campaign or ESABC. As part of a series of similar papers on other species [this issue] and in parallel to the contribution of the individual validation teams, the present paper provides a synthesis of comparisons performed between MIPAS CH4 and N2O profiles produced by the current ESA operational software (Instrument Processing Facility version 4.61 or IPF v4.61, full resolution MIPAS data covering the period 9 July 2002 to 26 March 2004) and correlative measurements obtained from balloon and aircraft experiments as well as from satellite sensors or from ground-based instruments. In the middle stratosphere, no significant bias is observed between MIPAS and correlative measurements, and MIPAS is providing a very consistent and global picture of the distribution of CH4 and N2O in this region. In average, the MIPAS CH4 values show a small positive bias in the lower stratosphere of about 5%. A similar situation is observed for N2O with a positive bias of 4%. In the lower stratosphere/upper troposphere (UT/LS) the individual used MIPAS data version 4.61 still exhibits some unphysical oscillations in individual CH4 and N2O profiles caused by the processing algorithm (with almost no regularization). Taking these problems into account, the MIPAS CH4 and N2O profiles are behaving as expected from the internal error estimation of IPF v4.61 and the estimated errors of the correlative measurements.
The ENVISAT validation programme for the atmospheric instruments MIPAS, SCIAMACHY and GOMOS is based on a number of balloon-borne, aircraft, satellite and ground-based correlative measurements. In particular the activities of validation scientists were coordinated by ESA within the ENVISAT Stratospheric Aircraft and Balloon Campaign or ESABC. As part of a series of similar papers on other species [this issue] and in parallel to the contribution of the individual validation teams, the present paper provides a synthesis of comparisons performed between MIPAS CH4 and N2O profiles produced by the current ESA operational software (Instrument Processing Facility version 4.61 or IPF v4.61, full resolution MIPAS data covering the period 9 July 2002 to 26 March 2004) and correlative measurements obtained from balloon and aircraft experiments as well as from satellite sensors or from ground-based instruments. In the middle stratosphere, no significant bias is observed between MIPAS and correlative measurements, and MIPAS is providing a very consistent and global picture of the distribution of CH4 and N2O in this region. In average, the MIPAS CH4 values show a small positive bias in the lower stratosphere of about 5%. A similar situation is observed for N2O with a positive bias of 4%. In the lower stratosphere/upper troposphere (UT/LS) the individual used MIPAS data version 4.61 still exhibits some unphysical oscillations in individual CH4 and N2O profiles caused by the processing algorithm (with almost no regularization). Taking these problems into account, the MIPAS CH4 and N2O profiles are behaving as expected from the internal error estimation of IPF v4.61 and the estimated errors of the correlative measurements.
In Ostkreta tritt innerhalb der Phyllit-Quarzit-Serie ein in vier Einheiten untergliederbares präalpidisches Altkristallin auf. Das basale Kalavros-Kristallin (KCC) wurde während der permischen (Monazitalter) Barrow-Metamorphose (Staurolith-Zone) überprägt. Unter amphibolitfaziellen Metamorphosebedingungen bildeten sich liegende Isoklinalfalten sowie eine mylonitische Foliation. Die Verteilung der -c-Achsen von Quarzen belegt non-koaxiale Deformation durch Rhomben<a>- und Prismen<a>Gleitung, die sich in einer hochtemperierten Grenzflächenwanderung (GBM) äußerte. Zudem wuchsen vierphasige Granate, in denen die äußerste Zone auf einen nochmaligen Druckanstieg hindeutet. Die Granate wurden wiederum von Muskoviten, die aus einer Deformation mit Top-E- bis Top-NE-Scherung resultierten, überwachsen. Das überlagernde Myrsini-Kristallin (MCC) besteht aus Glimmerschiefern, Gneisen, Quarziten und Marmoren. Die Liefergebiete der Paragesteine (Zirkonaltersspektrum eines Paragneises) weisen Einflüsse der amazonischen- (2,8 Ga), eburnischen- (1,9 Ga), kibaran/sunsasischen- (0,9 - 1,1 Ga) und panafrikanischen- (0,9 - 0,5 Ga) Orogenese auf. Im Mittelkambrium intrudierten Granite in die sedimentären/kristallinen Gesteine (514 ±14 Ma zrn & 507 ±189 Ma mnz). Während des Unterkarbons (Monazitalter) fand eine Barrow-Metamorphose (Staurolith-Zone) mit non-koaxialer Top-N-Scherung statt. Hierbei bildeten sich geschlossene, liegende Falten sowie eine mylonitische Foliation. Die Quarz-c-Achsen belegen non-koaxiale Rhomben<a>- bis Prismen<a>Gleitung, die sich in Subkornrotations-Rekristallisation (SGR) und hochtemperierter Korngrenzwanderungs-Rekristallisation (GBM) äußerte. Im Gegensatz zu den Granaten des KCC bildeten sich nur dreiphasige Granate. Während des retrograden variszischen Deformationspfades entstanden Top-NE-Scherzonen. Der bis in die Unterkreide anhaltende Aufstieg der Gesteine wird von Zirkon-Spaltspurenaltern (150 ±14 Ma) dokumentiert. Das hangende Chamezí-Kristallin (CCC) besteht aus Gneisen und Glimmerschiefern. Auch hier intrudierten im Mittelkambrium (S-Typ-)Granite (511 ±16 Ma zrn & 521 ±28 Ma mnz). Relikte einer prävariszischen Orogenese stellen die Granatkerne und Margarite in den Glimmerschiefern dar. Das Alter der Barrow-Metamorphose (Granat-Zone) mit Top-N-Scherung konnte mangels geeigneter Minerale nicht bestimmt werden. Die Verteilung der Quarz-c-Achsen resultiert aus einer non-koaxialen Deformation bei der überwiegend Basis<a>- und Rhomben<a>Gleitung mit Subkornrotations-Rekristallisation (SGR) auftrat. Es bildete sich eine protomylonitische Foliation sowie liegende offene N-S Falten, die anschließend mehrphasig überprägt wurden. Für einen langsamen Aufstieg der Gesteine sprechen die semiduktilen Top-NE-Scherzonen und jurassischen Zirkon-Spaltspurenalter (158 ±16 Ma). Eine unbekannte Position innerhalb des Altkristallins nimmt das Vaí-Kristallin (VCC) ein. Während der Trias intrudierten hier granitoide Gesteine (223 ±11Ma zrn). Eine spätere amphibolitfazielle Überprägung zeigt Top-NW-Scherung. Der schnelle Aufstieg der Gesteine wird durch jurassische Zirkon-Spaltspurenalter dokumentiert (184 ±11 Ma). Die Kristallingerölle der hangenden skythischen Metakalkkonglomerate können auf Grund der permischen bis triassischen Metamorphose der kretischen Altkristalline, der triassischen Intrusion der Granite des Vaí-Kristallins sowie den jurassischen Zirkon-Spaltspurenaltern nicht aus der unterlagernden Altkristallin-Einheit stammen. Der Kontakt zwischen dem Altkristallin und dem Metakalkkonglomerat ist somit das Ergebnis der alpidischen Orogenese. Auch die Zirkone, Monazite und Rutile wurden von der Niedertemperatur/Hochdruck-Metamorphose der alpidischen Orogenese beeinflusst. Vor allem die Zirkone des Chamezí-Orthogneises zeigen einen Pb- und vermutlich auch einen U-Verlust sowie einen Austausch von radiogenem Pb durch rezentes Pb. Dieser niedergradige Fluidtransport äußerte sich zudem in einem Lösen der Zirkone sowie einer zerstörten Zirkonstruktur. Gleichzeitig fand ein Einbau von Ca2+, Mn2+ und Mg2+ statt, der von den Ca-reichen Fluiden, die auf Grund der Karbonat-reichen Deckenstapel auftraten, forciert wurde. Keinen Einfluss auf den Blei-Verlust der Zirkone zeigt dagegen die amphibolit- bis grünschieferfazielle präalpidische Überprägung. Auf Grund der Altersspektren der Zirkone sowie der tektonischen Transportrichtungen werden die Kristallinkomplexe als Fragmente von Gondwana interpretiert. Im Rahmen der spät-panafrikanischen Metamorphose und Deformation erfolgte der Aufstieg der Plutonite, an die sich eine Riftingphase anschließt, während der sich die Fragmente abspalteten. Im Karbon bis Perm kollidierten unter Top-N-Kinematik das MCC, CCC und KCC mit Gondwana. In der Trias erfolgte letztlich der Aufstieg der Plutonite des VCC und dessen anschließende Überprägung. Die Heraushebung der Gesteine erfolgte im Jura.
In der hier vorliegenden Arbeit wurden Spurenstoff-Flüsse zwischen Atmosphäre und Pedosphäre, sowie zwischen Atmosphäre und Vegetation untersucht. Der Austausch zwischen Atmosphäre und Boden wurde mit Hilfe von dynamischen Bodenkammern gemessen. Zur Bestimmung des Austauschs zwischen Atmosphäre und Biosphäre wurden Gradienten der Spurengase oberhalb der Baumkronen gemessen und daraus die Flüsse bestimmt. Weiterhin wurden methodische Vergleiche der Gradientmethode mit anderen Methoden (Relaxed-Eddy-Accumulation, Eddy- Correlation) durchgeführt. Die Untersuchungen mit Hilfe der Gaswechselkammern zeigen, dass während aller Messungen der Boden eine Senke von atmosphärischem Carbonylsulfid dargestellt hat. Hiermit wird die Rolle des Bodens als eine Senke für COS bestätigt. Die Depositonsraten betragen im Mittel - 0,81 pmolm exp -2 s exp -1 und besitzen eine Variabilität zwischen - 0,23 und - 1,38 pmolm exp -2 s exp -1. Im Vergleich zu den Literaturwerten (siehe Tabelle 1.1) sind die Aufnahmeraten des Bodens auf der Versuchsfläche "F1" schwach ausgeprägt. Im Vergleich zu anderen Arbeiten (siehe Lehmann & Conrad, 1996; Kesselmeier et al., 1999) sind keine eindeutigen Korrelationen zwischen dem COS-Fluss und der Lufttemperatur bzw. der Bodenfeuchte oder den Bodentemperaturen in 2, 5 und 10 cm zu erkennen. Diese hier aufgeführten Arbeiten beruhen jedoch auf Labormessungen mit nur sehr geringen homogenen und präparierten Bodenmengen. Die Feldmessungen im Rahmen dieser Arbeit wurden nicht unter vergleichbar definierten Bedingungen durchgeführt. Aufgrund zahlreicher beeinflussender Parameter und der vertikalen Inhomogenität des Bodens konnte jedoch auch nicht mit vergleichbar guten Korrelationen gerechnet werden. Eine saisonale Abhängigkeit der COS-Aufnahme ist über einen Zeitraum von 21 2 Monaten nicht ausgeprägt. Da die Messungen einer Kampagne im Mai 1999 aufgrund von Kontaminationen der Luftproben vollständig verworfen wurden, erstreckten sich die Messungen nur vom Hochsommer bis zum Frühherbst. Die räumliche Variabilität erreicht dagegen innerhalb einer Entfernung von 10 m eine Spanne zwischen - 0,43 und - 0,73 pmolm exp -2 s exp -1. Zurückzuführen ist dies auf die starke räumliche ....
Im Rahmen des Projektes SPURT (Spurenstofftransport in der Tropopausenregion) als Teil des deutschen Atmosphärenforschungsprogramms AFO 2000 wurden bei 8 Messkampagnen mit insgesamt 36 Flügen innerhalb eines Beobachtungszeitraums von zwei Jahren (Nov. 2001 bis Juli 2003) Spurengasmessungen in dem Breitenbereich zwischen 35°N und 75°N durchgeführt. Für die Messungen der Spurengase N2O, F12, SF6, H2 und CO wurde der vollautomatisierte in-situ GC (Gaschromatograph) GhOST II (Gas Chromatograph for the Observation of Stratospheric Tracers) entwickelt und eingesetzt. Das Ziel dieser Messungen war die Untersuchung der jahreszeitlichen Variabilität der Spurengase in der oberen Troposphäre und untersten Stratosphäre (UT/LMS: Upper Troposphere/Lowermost Stratosphere), um die Transport- und Austauschprozesse in der Tropopausenregion besser zu verstehen. Zur Untersuchung von Transport und Mischung in der UT/LMS wurden die Rückwärtstrajektorien entlang der Flugpfade, die Verteilungen der Tracer N2O, F12, SF6, CO und CO2 (MPI für Chemie in Mainz), die Tracer/Tracer-Korrelationen N2O/F12, N2O/O3 F12/O3 und SF6/O3 und die Verteilungen des aus SF6-Messungen berechnete mittlere Alters der Luft herangezogen. Zusätzlich wurden die simultanen Messungen der beiden Alterstracer CO2 und SF6 genutzt, um die Propagation der Amplitude des troposphärischen CO2-Jahresgangs in die LMS zu bestimmen und daraus mit Hilfe eines empirischen Altersspektrums den Eintrag und die mittlere Transportzeit aus der Troposphäre in die unterste Stratosphäre zu quantifizieren. Grundsätzlich muss die LMS in zwei Bereiche eingeteilt werden – die Übergangsschicht („tropopause following layer“) bis etwa 20-30 K über der potentiellen Temperatur der lokalen Tropopause [Hoor et al., 2004] und die freie LMS oberhalb dieser Schicht. Als wesentliche Unterscheidungsmerkmale beider Bereiche wird die mittlere Transportzeit des Eintrags troposphärischer Luft identifiziert. Aus Trajektorienuntersuchungen und Tracerverteilungen (Kap. 3.4) kann gezeigt werden, dass der Transport in die Übergangsschicht und die Mischungsprozesse in diesem Bereich auf der Zeitskala der mesoskaligen troposphärischen Prozesse ablaufen. Im Gegensatz dazu werden aus der Massenbilanz (Kap. 5.3) mittlere Transportzeiten aus der Troposphäre in die freie LMS von einigen Wochen bis zu mehreren Monaten abgeleitet. Außerdem konnte nachgewiesen werden, dass der troposphärische Eintrag in der freien LMS fast ausschließlich auf quasihorizontale isentrope Einmischung aus den Tropen über die Transportbarriere des Subtropenjets zurückzuführen ist. Nur im Sommer und Herbst konnte auch oberhalb der Übergangsschicht für einzelne Messungen ein Einfluss aus der extratropischen Troposphäre beobachtet werden. Die in dieser Arbeit untersuchten Tracerverteilungen und -korrelationen (Kap. 4) und die Verteilung des mittleren Alters (Kap.5.2) in der LMS zeigen einen Jahresgang mit einem maximalen troposphärischen Einfluss im Oktober und einem maximalen stratosphärischen Einfluss im April. Diese saisonale Charakteristik in der freien LMS kann durch die saisonalen Änderungen des Verhältnisses von Abwärtstransport aus der Overworld und quasihorizontalem Transport aus den Tropen und durch die mit den jeweiligen Transportprozessen assoziierte mittlere Transportzeiten erklärt werden, die aus Massenbilanzrechnungen bestimmt wurden. Es wird gezeigt, dass der überwiegende Eintrag von troposphärischer Luft in die LMS im Sommer und Herbst stattfindet, wobei im Mittel die kürzesten mittleren Transitzeiten (unter 0.3 Jahre) für den August und die längsten Transitzeiten (über 0.6 Jahre) für den Mai berechnet werden. Aus den Ergebnissen wird gefolgert, dass ein ausgeprägter isentroper Austauschprozess über den Subtropenjet im Sommer bis in den Herbst hinein der dominierende troposphärische Einfluss in der LMS bis in den Mai ist. Der Vergleich zwischen SPURT und anderen in der UT/LMS im Zeitraum von 1992 bis 1998 durchgeführten Messkampagnen zeigt einen systematischen Unterschied in den N2O/O3-Korrelationen. Die Zunahme von O3 relativ zu N2O in der LMS ist um etwa 6.5 ppb O3 pro 1 ppb N2O bzw. etwa 40% größer als die Zunahme bei jahreszeitlich vergleichbaren früheren Kampagnen. Durch eine weitergehende Analyse der Messungen, z.B. durch den Vergleich der N2O-Verteilungen in der LMS bei verschiedenen Messkampagnen, und zusätzlichen Informationen aus Satelliten- und Ballonmessungen wird abgeleitet, dass diese Änderung der N2O/O3-Korrelationen im Wesentlichen auf einen im Zeitraum von SPURT stärkeren quasihorizontalen Transport aus den Tropen in die Extratropen im Bereich des so genannten „tropical controlled transition layer“ [Rosenlof et al., 1997] zwischen 16-21 km (bzw. Θ ≈ 380-450 K) zurückzuführen ist. In Kooperation mit B. Bregman wurden mit dem Chemie-Transport-Modell TM5 des KNMI die Verteilungen von SF6 und CO2 in der Troposphäre und Stratosphäre, unter den Zielsetzungen Evaluation des Modelltransports und Erweiterung des Datensatzes von SPURT auf globalen Maßstab, für den Zeitraum 1.1.2000 bis 31.12.2002 modelliert. Dabei konnte gezeigt werden, dass bei Modellstudien zur Evaluation des Transports mit Hilfe von Alterstracern nicht nur troposphärisch monoton steigende Tracer wie SF6 sondern auch saisonal variable Tracer wie CO2 verwendet werden müssen. Bei dem Vergleich der Modellergebnisse des TM5 mit ER2- und SPURTMessungen zeigt sich, dass das Modell zum jetzigen Zeitpunkt in der Lage ist, das mittlere Alter in der unteren Stratosphäre und die SF6- und CO2-Verteilungen in der LMS qualitativ richtig wiederzugeben. Das mittlere Alter in der unteren Stratosphäre wird um etwa 0.5 bis 1 Jahr in den Tropen über- und in den Extratropen unterschätzt. Die vertikalen Gradienten im Modell für SF6 und CO2 in der LMS sind, insbesondere im Winter und Frühjahr, zu gering. Die Amplitude des CO2-Jahresganges in der oberen Troposphäre und in der LMS wird durch das Modell unterschätzt, während der saisonale Verlauf des Jahresganges richtig wiedergegeben wird. Im Moment wird vermutet, dass eine zu starke isentrope Mischung zwischen Tropen und Extratropen und/oder ein zu geringer Aufwärtstransport in der extratropischen Troposphäre im Sommer und Herbst die Ursachen für die beobachteten Abweichungen zwischen Modell und Messung sind.
Diese Arbeit beschreibt Entwürfe zur Anwendung einer nicht-interpolierenden Advektionsmethode in numerischen Wettervorhersagemodellen. Es wird an verschiedenen Beispielen dargestellt, in welcher Weise eine solche nicht-interpolierende Methode anstelle von herkömmlichen Differenzen- oder interpolierenden Lagrangeschen Verfahren einsetzbar ist. Die in der meteorologischen Modellierung neuartige nicht-interpolierende Advektionsmethode verwendet das Partikel-Lagrangesche Konzept von Steppeler (1990a), das die Verlagerung von atmosphärischen Größen mittels Partikeln berechnet, wobei die Partikeln als Luftpakete zu verstehen sind, die sich entlang der Trajektorien bewegen und dabei den Wert der prognostischen Größen erhalten. Diese Eigenschaft der Methode kommt vor allem dann zum Tragen, wenn die Verteilung der prognostischen Größen durch Sprungfunktionen beschrieben wird, da Näherungsfehler der bislang verwendeten Methoden, wie Oszillation und Glättung, an solchen Gradienten verstärkt auftreten. Die Untersuchung der Genauigkeit und Anwendbarkeit der nicht-interpolierenden Partikel-Lagrangeschen Methode findet durch Modellstudien statt. Die Methode selbst wird am Beispiel verschiedener Anfangswert-Aufgaben für ein dichtekonstantes barotropes Flachwasser-System beschrieben, gefolgt von der Nachbildung von zwei Ausbreitungsszenarien für chemisch träge Stoffe in einer hydrostatischen Modellatmosphäre, sowie des trocken- und feuchtadiabatischen Aufstiegs einer warmen Luftblase unter nicht- hydrostatischen Bedingungen. Im Hinblick auf numerische Fehler wird gefordert, daß die numerische Lösung monoton bleibt, wobei unter Monotonität ein oszillationsfreier Verlauf der Lösung verstanden wird. Mittels Vergleich zwischen den numerischen Lösungen wird festgestellt, daß die Genauigkeit der nicht-interpolierenden numerischen Lösung mit Ausnahme einer Anfangswert-Aufgabe gleich oder höher ist als bei den mit herkömmlichen Methoden erzielten Resultaten. Eine herausragende Steigerung der Genauigkeit ist dann zu beobachten, wenn die Advektion im Vergleich zu anderen Prozessen eine viel stärkere Rolle spielt, wie z.B. im Falle der Konvektion in trockener Atmosphäre.
Unsichtbare Winzlinge
(2023)
This article presents an environmental remote sensing application using a UAV that is specifically aimed at reducing the data gap between field scale and satellite scale in soil erosion monitoring in Morocco. A fixed-wing aircraft type Sirius I (MAVinci, Germany) equipped with a digital system camera (Panasonic) is employed. UAV surveys are conducted over different study sites with varying extents and flying heights in order to provide both very high resolution site-specific data and lower-resolution overviews, thus fully exploiting the large potential of the chosen UAV for multi-scale mapping purposes. Depending on the scale and area coverage, two different approaches for georeferencing are used, based on high-precision GCPs or the UAV’s log file with exterior orientation values respectively. The photogrammetric image processing enables the creation of Digital Terrain Models (DTMs) and ortho-image mosaics with very high resolution on a sub-decimetre level. The created data products were used for quantifying gully and badland erosion in 2D and 3D as well as for the analysis of the surrounding areas and landscape development for larger extents.
New particle formation driven by acid–base chemistry was initiated in the CLOUD chamber at CERN by introducing atmospherically relevant levels of gas-phase sulfuric acid and dimethylamine (DMA). Ammonia was also present in the chamber as a gas-phase contaminant from earlier experiments. The composition of particles with volume median diameters (VMDs) as small as 10 nm was measured by the Thermal Desorption Chemical Ionization Mass Spectrometer (TDCIMS). Particulate ammonium-to-dimethylaminium ratios were higher than the gas-phase ammonia-to-DMA ratios, suggesting preferential uptake of ammonia over DMA for the collected 10–30 nm VMD particles. This behavior is not consistent with present nanoparticle physicochemical models, which predict a higher dimethylaminium fraction when NH3 and DMA are present at similar gas-phase concentrations. Despite the presence in the gas phase of at least 100 times higher base concentrations than sulfuric acid, the recently formed particles always had measured base : acid ratios lower than 1 : 1. The lowest base fractions were found in particles below 15 nm VMD, with a strong size-dependent composition gradient. The reasons for the very acidic composition remain uncertain, but a plausible explanation is that the particles did not reach thermodynamic equilibrium with respect to the bases due to rapid heterogeneous conversion of SO2 to sulfate. These results indicate that sulfuric acid does not require stabilization by ammonium or dimethylaminium as acid–base pairs in particles as small as 10 nm.
New particle formation driven by acid-base chemistry was initiated in the CLOUD chamber at CERN by introducing atmospherically relevant levels of gas phase sulfuric acid and dimethylamine (DMA). Ammonia was also present in the chamber as a gas-phase contaminant from earlier experiments. The composition of particles with volume median diameters (VMDs) as small as 10 nm was measured by the Thermal Desorption Chemical Ionization Mass Spectrometer (TDCIMS). Particulate ammonium-to-dimethylaminium ratios were higher than the gas phase ammonia-to-DMA ratios, suggesting preferential uptake of ammonia over DMA for the collected 10-30 nm VMD particles. This behavior is not consistent with present nanoparticle physico-chemical models, which predict a higher dimethylaminium fraction when NH3 and DMA are present at similar gas phase concentrations. Despite the presence in the gas phase of at least 100 times higher base concentrations than sulfuric acid, the recently formed particles always had measured base:acid ratios lower than 1:1. The lowest base fractions were found in particles below 15 nm VMD, with a strong size-dependent composition gradient that suggests a change to a mixed-phase state as the particles grew beyond this size. The reasons for the very acidic composition remain uncertain, but a possible explanation is that the particles did not reach thermodynamic equilibrium with respect to the bases due to rapid heterogeneous conversion of SO2 to sulfate. These results indicate that sulfuric acid does not require stabilization by ammonium or dimethylaminium as acid-base pairs in particles as small as 10 nm.
Recently, carbonates have attracted a lot of attention, due to the recognition of their importance in the global carbon cycle. This was enabled by improvement of the experimental techniques that allow for investigating the stability, structure, and physical properties of materials and high-pressures and high-temperatures, that is, they allow for investigating minerals and geochemical processes at the conditions occurring deep inside Earth. Although a lot of research has been focused on carbonates, there are still some open questions regarding their structure and physical properties at such extreme conditions. The aim of this thesis is to establish a deeper understanding of the nature of the phase transitions in carbonates by studying how do the atoms building up the crystal structure vibrate, that is lattice dynamics. The methodology adapted in this study is a combination of experimental and computational methods which allows for a very thorough examination of the problem. The computational approach allows to determine parameters that are elusive or tedious to measure, and the experimental results provide a solid benchmark for the calculations. This tandem of methods has been widely used for investigating lattice dynamics of various materials. In this study it was used to elucidate the structure and properties of carbonates in the deep Earth conditions
Un tuf volcanique a ete mis en evidence dans trois profils de loess de Hesbaye (Rocourt et Lixhe) et du Limbourg neerlandais (Nagelbeek). Ce tuf correspond probablement ä l'Eltviller Tuff connu en Hesse (SEMMEL 1967). En consequence, cette decouverte permet de comparer directement une partie de la sequence des loess du Pleistocene superieur propre ä chaque region
Mechanisms by which subvisible cirrus clouds (SVCs) might contribute to dehydration close to the tropical tropopause are not well understood. Recently Ultrathin Tropical Tropopause Clouds (UTTCs) with optical depths around 10−4 have been detected in the western Indian ocean. These clouds cover thousands of square kilometers as 200–300 m thick distinct and homogeneous layer just below the tropical tropopause. In their condensed phase UTTCs contain only 1–5% of the total water, and essentially no nitric acid. A new cloud stabilization mechanism is required to explain this small fraction of the condensed water content in the clouds and their small vertical thickness. This work suggests a mechanism, which forces the particles into a thin layer, based on upwelling of the air of some mm/s to balance the ice particles, supersaturation with respect to ice above and subsaturation below the UTTC. In situ measurements suggest that these requirements are fulfilled. The basic physical properties of this mechanism are explored by means of a single particle model. Comprehensive 1-D cloud simulations demonstrate this stabilization mechanism to be robust against rapid temperature fluctuations of +/−0.5 K. However, rapid warming (ΔT>2 K) leads to evaporation of the UTTC, while rapid cooling (ΔT<−2 K) leads to destabilization of the particles with the potential for significant dehydration below the cloud.
Subvisible cirrus clouds (SVCs) may contribute to dehydration close to the tropical tropopause. The higher and colder SVCs and the larger their ice crystals, the more likely they represent the last efficient point of contact of the gas phase with the ice phase and, hence, the last dehydrating step, before the air enters the stratosphere. The first simultaneous in situ and remote sensing measurements of SVCs were taken during the APE-THESEO campaign in the western Indian ocean in February/March 1999. The observed clouds, termed Ultrathin Tropical Tropopause Clouds (UTTCs), belong to the geometrically and optically thinnest large-scale clouds in the Earth's atmosphere. Individual UTTCs may exist for many hours as an only 200–300 m thick cloud layer just a few hundred meters below the tropical cold point tropopause, covering up to 105 km2. With temperatures as low as 181 K these clouds are prime representatives for defining the water mixing ratio of air entering the lower stratosphere.
Mechanisms by which subvisible cirrus clouds (SVCs) might contribute to dehydration close to the tropical tropopause are not well understood. Recently Ultrathin Tropical Tropopause Clouds (UTTCs) with optical depths around 10-4 have been detected in the western Indian ocean. These clouds cover thousands of square kilometers as 200-300 m thick distinct and homogeneous layer just below the tropical tropopause. In their condensed phase UTTCs contain only 1-5% of the total water, and essentially no nitric acid. A new cloud stabilization mechanism is required to explain this small fraction of the condensed water content in the clouds and their small vertical thickness. This work suggests a mechanism, which forces the particles into a thin layer, based on upwelling of the air of some mm/s to balance the ice particles, supersaturation with respect to ice above and subsaturation below the UTTC. In situ measurements suggest that these requirements are fulfilled. The basic physical properties of this mechanism are explored by means of a single particle model. Comprehensive 1-D cloud simulations demonstrate this stabilization mechanism to be robust against rapid temperature fluctuations of +/- 0.5 K. However, rapid warming (Delta T > 2 K) leads to evaporation of the UTTC, while rapid cooling (Delta T < -2 K) leads to destabilization of the particles with the potential for significant dehydration below the cloud
Subvisible cirrus clouds (SVCs) may contribute to dehydration close to the tropical tropopause. The higher and colder SVCs and the larger their ice crystals, the more likely they represent the last efficient point of contact of the gas phase with the ice phase and, hence, the last dehydrating step, before the air enters the stratosphere. The first simultaneous in situ and remote sensing measurements of SVCs were taken during the APE-THESEO campaign in the western Indian ocean in February/March 1999. The observed clouds, termed Ultrathin Tropical Tropopause Clouds (UTTCs), belong to the geometrically and optically thinnest large-scale clouds in the Earth´s atmosphere. Individual UTTCs may exist for many hours as an only 200--300 m thick cloud layer just a few hundred meters below the tropical cold point tropopause, covering up to 105 km2. With temperatures as low as 181 K these clouds are prime representatives for defining the water mixing ratio of air entering the lower stratosphere.
Abstract
The mineralogy, chemical composition, and physical properties of cratonic mantle eclogites with oceanic crustal protoliths can be modified by secondary processes involving interaction with fluids and melts, generated in various slab lithologies upon subduction (auto‐metasomatism) or mantle metasomatism after emplacement into the cratonic lithosphere. Here we combine new and published data to isolate these signatures and evaluate their effects on the chemical and physical properties of eclogite. Mantle metasomatism involving kimberlite‐like, ultramafic carbonated melts (UM carbonated melts) is ubiquitous though not pervasive, and affected between ~20% and 40% of the eclogite population at the various localities investigated here, predominantly at ~60–150 km depth, overlapping cratonic midlithospheric seismic discontinuities. Its hallmarks include lower jadeite component in clinopyroxene and grossular component in garnet, an increase in bulk‐rock MgO ± SiO2, and decrease in FeO and Al2O3 contents, and LREE‐enrichment accompanied by higher Sr, Pb, Th, U, and in part Zr and Nb, as well as lower Li, Cu ± Zn. This is mediated by addition of a high‐temperature pyroxene from a UM carbonated melt, followed by redistribution of this component into garnet and clinopyroxene. As clinopyroxene‐garnet trace‐element distribution coefficients increase with decreasing garnet grossular component, clinopyroxene is the main carrier of the metasomatic signatures. UM carbonated melt‐metasomatism at >130–150 km has destroyed the diamond inventory at some localities. These mineralogical and chemical changes contribute to low densities, with implications for eclogite gravitational stability, but negligible changes in shear‐wave velocities, and, if accompanied by H2O‐enrichment, will enhance electrical conductivities compared to unenriched eclogites.
Plain Language Summary
Oceanic crust formed at spreading ridges is recycled in subduction zones and undergoes metamorphism to eclogite. Some of this material is captured in the overlying lithospheric mantle, where it is exhumed by passing magmas. Having formed in spreading ridges, these eclogites have proven invaluable archives for the onset of plate tectonics, for the construction of cratons during subduction/collision, as probes of the convecting mantle from which their precursors formed, and as generators of heterogeneity upon recycling into Earth's convecting mantle. During subduction and until exhumation, interaction with fluids and melts (called metasomatism) can change the mineralogy, chemical composition, and physical properties of mantle eclogites, complicating their interpretation, but a comprehensive study of these effects is lacking so far. We investigated mantle eclogites from ancient continents (cratons) around the globe in order to define hallmarks of metasomatism by subduction‐related fluids and small‐volume ultramafic carbonated mantle melts. We find that the latter is pervasive and occurs predominantly at midlithospheric depths where seismic discontinuities are detected, typically causing diamond destruction and a reduction in density. This has consequences for their gravitational stability and for the interpretation of shearwave velocities in cratons.
Die vorliegende Arbeit beschäftigt sich mit der geochemischen und isotopischen Analyse detritischer Zirkonminerale aus rezenten Sedimenten des weit verzweigten Orange- und Vaal River Flusssystems in Südafrika. Zirkone kristallisieren überwiegend aus krustalen Schmelzen und sind äußerst resistent gegenüber jeglicher Zerstörung und damit ein idealer Kandidat zur Rekonstruktion früherer Krustenbildungsprozesse der geologischen Erdgeschichte. Der kombinierte Ansatz der U-Pb Altersdatierung, der Hf Isotopie und der Spurenelementgeochemie mittels Laserablation und des Einsatzes induktiv-gekoppelter Sektorfeld- und Multikollektormassenspektrometer ermöglicht es die krustale Wachstums- und Entwicklungsgeschichte des südafrikanischen Kratons zu erfassen. Die mehr als 1200 U-Pb Analysen der Zirkone weisen 4 tektonische Hauptphasen des südafrikanischen Kontinents nach: 1. die Panafrikanische Orogenese (0.5-0.7 Ga), 2. das Namaqua-Natal Faltengürtelorogen (1.0-1.3 Ga), 3. die Kheis Orogenese (1.8-2.0 Ga) und 4. die westliche Kaapvaal-Kratonisierung (2.9-3.2 Ga). Allerdings zeigt sich, dass die 13 Probenlokationen überwiegend lokale bzw. regionale U-Pb Altersdaten ihrer umgebenden Herkunftsgebiete liefern. Die Hf Isotopie der Zirkone der verschiedenen tektonischen Hauptphasen Südafrikas stellen ihre differenzierte Akkretions- und Aufschmelzungsgeschichte dar. Die panafrikanischen Zirkone zeigen eine ausgeprägte Durchmischung von juvenilem und recyceltem Material. Die mesoproterozoischen (Namaquan) Zirkone entstanden aus juvenilem Magma während eines Inselbogen-Kontinent-Kollisionsereignisses. Die paläoproterozoischen und archaischen Zirkone sind Produkte von aufgeschmolzener prä-existierender kontinentaler Kruste oder vom Mantel abstammende Schmelzen, die durch kontinentale Kruste kontaminiert wurden. Die berechneten Hf Modellalter, so genannte „Mantelextraktionsalter" ergeben zwei Maxima, die zwei Stadien juvenilem Krustenwachstums einschließen, einmal vor 1.4 und 3.2 Ga. Dieses krustale Wachstum zeigt eine Übereinstimmung mit den progressiv episodischen Modellen von Nagler & Kramers (1998) sowie Condie (2000) mit Höhepunkten zwischen 3.0 und 2.0 Ga sowie den Studien von Wang et al. (2008) mit krustalen Wachstumsperioden von 1.6 bis 2.2 und 2.9 bis 3.4 Ga auf dem Nordamerikanischen Kontinent und auf dem Gondwana-Kontinent (Australien) von Hawkesworth & Kemp 2006) und implizieren wohl ein globales kontinentales Krustenwachstum. Die Abgrenzung und Wiedererkennung der Zirkone anhand der chemischen Zusammensetzung zu möglichen Muttergesteinen zeigen noch keine viel versprechenden Ergebnisse. Generell weisen die Zirkone eine magmatische granitoide Zusammensetzung kontinentalen Ursprungs auf. Eine Auffälligkeit stellen die erhöhten Spuren- und leichten Seltenenerdelemente in Zirkonen jeglicher Altersklassen dar. Nachfolgende Arbeiten müssen zeigen, wie und ob diese Anreicherungen Einfluss auf die chemische Zusammensetzung, die U-Pb Datierung und vor allem die Hf-Isotopie der Zirkone haben.
The CARIBIC (Civil Aircraft for the Regular Investigation of the Atmosphere Based on an Instrument Container) passenger aircraft observatory performed in situ measurements at 10–12 km altitude in the South Asian summer monsoon anticyclone between June and September 2008. These measurements enable us to investigate this atmospheric region (which so far has mostly been observed from satellites) using the broad suite of trace gases and aerosol particles measured by CARIBIC. Elevated levels of a variety of atmospheric pollutants (e.g. carbon monoxide, total reactive nitrogen oxides, aerosol particles, and several volatile organic compounds) were recorded. The measurements provide detailed information about the chemical composition of air in different parts of the monsoon anticyclone, particularly of ozone precursors. While covering a range of 3500 km inside the monsoon anticyclone, CARIBIC observations show remarkable consistency, i.e. with distinct latitudinal patterns of trace gases during the entire monsoon period.
Using the CARIBIC trace gas and aerosol particle measurements in combination with the Lagrangian particle dispersion model FLEXPART, we investigated the characteristics of monsoon outflow and the chemical evolution of air masses during transport. The trajectory calculations indicate that these air masses originated mainly from South Asia and mainland Southeast Asia. Estimated photochemical ages of the air were found to agree well with transport times from a source region east of 90–95° E. The photochemical ages of the air in the southern part of the monsoon anticyclone were systematically younger (less than 7 days) and the air masses were mostly in an ozone-forming chemical mode. In its northern part the air masses were older (up to 13 days) and had unclear ozone formation or destruction potential. Based on analysis of forward trajectories, several receptor regions were identified. In addition to predominantly westward transport, we found evidence for efficient transport (within 10 days) to the Pacific and North America, particularly during June and September, and also of cross-tropopause exchange, which was strongest during June and July. Westward transport to Africa and further to the Mediterranean was the main pathway during July.
The CARIBIC (Civil Aircraft for the Regular Investigation of the Atmosphere Based on an Instrument Container) passenger aircraft observatory performed in situ measurements at 10–12 km altitude in the South Asian summer monsoon anticyclone between June and September 2008. These measurements enable us to investigate this atmospheric region, which so far has mostly been observed from satellites, using the broad suite of trace gases and aerosols measured by CARIBIC. Elevated levels of a range of atmospheric pollutants were recorded e.g. carbon monoxide, total reactive nitrogen oxides, aerosol particles and several volatile organic compounds. The measurements provide detailed information about the chemical composition of air in different parts of the monsoon anticyclone, particularly of ozone precursors. While covering a range of 3500 km inside the monsoon anticyclone, CARIBIC observations show remarkable consistency, i.e. with regular latitudinal patterns of trace gases during the entire monsoon period. Trajectory calculations indicate that these air masses originated mainly from South Asia and Mainland Southeast Asia.
Using the CARIBIC trace gas and aerosol measurements in combination with the Lagrangian particle dispersion model FLEXPART we investigated the characteristics of monsoon outflow and the chemical evolution of air masses during transport. Estimated photochemical ages of the air were found to agree well with transport times from a source region east of 95 ° E. The photochemical ages of the air in the southern part of the monsoon anticyclone were consistently younger (less than 7 days) and the air masses mostly in an ozone forming chemical regime. In its northern part the air masses were older (up to 13 days) and had unclear ozone formation or destruction potential. Based on analysis of forward trajectories several receptor regions were identified. In addition to predominantly westward transport, we found evidence for efficient transport (within 10 days) to the Pacific and North America, particularly during June and September, and also of cross-tropopause exchange, which was strongest during June and July. Westward transport to Africa and further to the Mediterranean was the main pathway during July.
A comprehensive evaluation of seasonal backward trajectories initialized in the Northern Hemisphere lowermost stratosphere (LMS) has been performed to investigate the origin of air parcels and the main mechanisms determining characteristic structures in H2O and CO within the LMS. In particular we explain the fundamental role of the transit time since last tropopause crossing (tTST) for the chemical structure of the LMS as well as the feature of the extra-tropical tropopause transition layer (ExTL) as identified from CO profiles. The distribution of H2O in the background LMS above Θ=320 K and 340 K in northern winter and summer, respectively, is found to be governed mainly by the saturation mixing ratio, which in turn is determined by the Lagrangian Cold Point (LCP) encountered by each trajectory. Most of the backward trajectories from this region in the LMS experienced their LCP in the tropics and sub-tropics. The transit time since crossing the tropopause from the troposphere to the stratosphere (tTST) is independent of the H2O value of the air parcel. TST often occurs 20 days after trajectories have encountered their LCP. CO, on the other hand, depends strongly on tTST due to its finite lifetime. The ExTL as identified from CO measurements is then explained as a layer of air just above the tropopause, which on average encountered TST fairly recently.
A comprehensive evaluation of seasonal backward trajectories initialized in the northern hemisphere lowermost stratosphere (LMS) has been performed to investigate the factors that determine the temporal and spatial structure of troposphere-to-stratosphere-transport (TST) and it’s impact on the LMS. In particular we explain the fundamental role of the transit time since last TST (tTST) for the chemical composition of the LMS. According to our results the structure of the LMS can be characterized by a layer with tTST<40 days forming a narrow band around the local tropopause. This layer extends about 30K above the local dynamical tropopause, corresponding to the extratropical tropopause transition layer (ExTL) as identified by CO. The LMS beyond this layer shows a relatively well defined separation as marked by an aprupt transition to longer tTST indicating less frequent mixing and a smaller fraction of tropospheric air. Thus the LMS constitutes a region of two well defined regimes of tropospheric influence. These can be characterized mainly by different transport times from the troposphere and different fractions of tropospheric air. Carbon monoxide (CO) mirrors this structure of tTST due to it’s finite lifetime on the order of three months. Water vapour isopleths, on the other hand, do not uniquely indicate TST and are independent of tTST, but are determined by the Lagrangian Cold Point (LCP) of air parcels. Most of the backward trajectories from the LMS experienced their LCP in the tropics and sub-tropics, and TST often occurs 20 days after trajectories have encountered their LCP. Therefore, ExTL properties deduced from CO and H2O provide totally different informations on transport and particular TST for the LMS.
The TTL is the transition layer between the tropical troposphere and stratosphere, and is the main region where tropospheric air enters the stratosphere. In this thesis different transport processes are studied by using in situ measurements of tracers. Long-lived tracers were measured with the High Altitude Gas Analyzer (HAGAR) on board the M55 Geophysica aircraft. The instrument was developed by the University of Frankfurt and measures the long-lived tracers CO2, N2O, CFC-12, CFC-11, H-1211, SF6, CH4 and H2 with two gas chromatographic channels and a CO2 sensor (LICOR). The measurements are supported by CO and O3 measurements of other instruments. Two campaigns were conducted to obtain measurements in the TTL: SCOUT-O3 (November/December 2005 in Darwin, Australia) and AMMA-SCOUT-O3 (August 2006 in Ouagadougou, Burkina Faso). After a general introduction of the thesis in chapters one and two, the third chapter describes the findings during this last campaign. Five local flights are analyzed to study the different transport processes that occur in the tropical tropopause layer above West-Africa: deep convection up to the level of main convective outflow, vertical mixing after overshooting of air in deep convection, horizontal inmixing from the extratropical lower stratosphere, and horizontal transport across the subtropical barrier. Main findings are that the TTL over West-Africa is mostly influenced by remote convection. The subtropical barrier is not a strong barrier but more a region of transition between the extratropical and the tropical stratosphere. Chapter 4 presents the results obtained during the SCOUT-O3 campaign. From the eight local flights the last four flights (051129, 051130a, 051130b, 051205) show enhanced values of ozone, CO and CO2 between 355 and 380 K potential temperature in comparison with the first four flights (051116, 051119, 051123, 051125). Horizontal inmixing from the extra-tropical stratosphere and influence of the local convective system Hector cannot explain the enhanced values of the two flights on 30 November Therefore, other possible explanations for these enhanced CO, CO2 and ozone levels are proposed. The first explanation is vertical mixing in the vicinity of the jet stream. However, the jet cannot explain the differences between the flights on 30 November and the flights on 29 November and 5 December. Another possible explanation is influence of polluted boundary layer air masses from the Indonesian region. Especially air sampled during the flights on November 30 crossed large parts of northern Indonesia between 8 and 10 days before the measurements. Convective uplift of biomass burning and other pollution plumes can transport CO and ozone precursors into the upper troposphere, where they can significantly enhance the ozone production. The last chapter deals with the vertical ascent rate in the TTL and uses measurements of both the SCOUT-O3 and AMMA-SCOUT-O3 campaign as well as data from previous aircraft campaigns (TROCCINOX and APE-THESEO). Time scales and residence times for mean vertical transport in the background TTL are estimated for different seasons and over different geographic regions using in situ observations of CO2 and long-lived tracers. The vertical transport time scales are constrained using the seasonal variation of CO2 in the tropical troposphere as a “tracer clock” for vertical ascent. Two methods are applied to calculate the residence time in the layer between 360 and 390 K potential temperature. The first method uses the slope of the CO2 index, the second method fits the CO2 index directly to the measurements assuming a constant ascent rate. The first method yields residence times for Australia,West Africa, and Brazil of the same order, 35-45 days to 380 K and 50 days to 390 K (where no value can be derived for Australia as the slope is changing approximately one month before the campaign). For APE-THESEO, the method does not yield reasonable results. The best estimates using the second method show moderate residence times between 360 and 390 K of 60±25 days SCOUT-O3 (NH autumn) and 43±8 days for AMMA/SCOUT-O3 (NH summer). These results agree well with the results calculated using the first method. For APE-THESEO and TROCCINOX the best fits yield shorter residence times of 23±7 and 40±10 days, respectively, both during winter. These results correspond well to the expectations based on the seasonal variation of the Brewer-Dobson circulation.
Tracer measurements in the tropical tropopause layer during the AMMA/SCOUT-O3 aircraft campaign
(2009)
We present airborne in situ measurements made during the AMMA (African Monsoon Multidisciplinary Analysis)/SCOUT-O3 campaign between 31 July and 17 August 2006 on board the M55 Geophysica aircraft, based in Ouagadougou, Burkina Faso. CO2 and N2O were measured with the High Altitude Gas Analyzer (HAGAR), CO was measured with the Cryogenically Operated Laser Diode (COLD) instrument, and O3 with the Fast Ozone ANalyzer (FOZAN). We analyze the data obtained during five local flights to study the dominant transport processes controlling the tropical tropopause layer (TTL) above West-Africa: deep convection up to the level of main convective outflow, overshooting of deep convection, horizontal inmixing across the subtropical tropopause, and horizontal transport across the subtropical barrier. Except for the flight of 13 August, distinct minima in CO2 indicate convective outflow of boundary layer air in the TTL. The CO2 profiles show that the level of main convective outflow was mostly located between 350 and 360 K, and for 11 August reached up to 370 K. While the CO2 minima indicate quite significant convective influence, the O3 profiles suggest that the observed convective signatures were mostly not fresh, but of older origin. When compared with the mean O3 profile measured during a previous campaign over Darwin in November 2005, the O3 minimum at the main convective outflow level was less pronounced over Ouagadougou. Furthermore O3 mixing ratios were much higher throughout the whole TTL and, unlike over Darwin, rarely showed low values observed in the regional boundary layer. Signatures of irreversible mixing following overshooting of convective air were scarce in the tracer data. Some small signatures indicative of this process were found in CO2 profiles between 390 and 410 K during the flights of 4 and 8 August, and in CO data at 410 K on 7 August. However, the absence of expected corresponding signatures in other tracer data makes this evidence inconclusive, and overall there is little indication from the observations that overshooting convection has a profound impact on TTL composition during AMMA. We find the amount of photochemically aged air isentropically mixed into the TTL across the subtropical tropopause to be not significant. Using the N2O observations we estimate the fraction of aged extratropical stratospheric air in the TTL to be 0.0±0.1 up to 370 K during the local flights, increasing above this level to 0.2±0.15 at 390 K. The subtropical barrier, as indicated by the slope of the correlation between N2O and O3 between 415 and 490 K, does not appear as a sharp border between the tropics and extratropics, but rather as a gradual transition region between 10 and 25° N latitude where isentropic mixing between these two regions may occur.
Tracer measurements in the tropical tropopause layer during the AMMA/SCOUT-O3 aircraft campaign
(2010)
We present airborne in situ measurements made during the AMMA (African Monsoon Multidisciplinary Analysis)/SCOUT-O3 campaign between 31 July and 17 August 2006 on board the M55 Geophysica aircraft, based in Ouagadougou, Burkina Faso. CO<sub>2</sub> and N<sub>2</sub>O were measured with the High Altitude Gas Analyzer (HAGAR), CO was measured with the Cryogenically Operated Laser Diode (COLD) instrument, and O<sub>3</sub> with the Fast Ozone ANalyzer (FOZAN). We analyze the data obtained during five local flights to study the dominant transport processes controlling the tropical tropopause layer (TTL) above West-Africa: deep convection up to the level of main convective outflow, overshooting of deep convection, horizontal inmixing across the subtropical tropopause, and horizontal transport across the subtropical barrier. Except for the flight of 13 August, distinct minima in CO<sub>2</sub> indicate convective outflow of boundary layer air in the TTL. The CO<sub>2</sub> profiles show that the level of main convective outflow was mostly located between 350 and 360 K, and for 11 August reached up to 370 K. While the CO<sub>2</sub> minima indicate quite significant convective influence, the O<sub>3</sub> profiles suggest that the observed convective signatures were mostly not fresh, but of older origin. When compared with the mean O<sub>3</sub> profile measured during a previous campaign over Darwin in November 2005, the O<sub>3</sub> minimum at the main convective outflow level was less pronounced over Ouagadougou. Furthermore O<sub>3</sub> mixing ratios were much higher throughout the whole TTL and, unlike over Darwin, rarely showed low values observed in the regional boundary layer. Signatures of irreversible mixing following overshooting of convective air were scarce in the tracer data. Some small signatures indicative of this process were found in CO<sub>2</sub> profiles between 390 and 410 K during the flights of 4 and 8 August, and in CO data at 410 K on 7 August. However, the absence of expected corresponding signatures in other tracer data makes this evidence inconclusive, and overall there is little indication from the observations that overshooting convection has a profound impact on TTL composition during AMMA. We find the amount of photochemically aged air isentropically mixed into the TTL across the subtropical tropopause to be not significant. Using the N<sub>2</sub>O observations we estimate the fraction of aged extratropical stratospheric air in the TTL to be 0.0±0.1 up to 370 K during the local flights, increasing above this level to 0.2±0.15 at 390 K. The subtropical barrier, as indicated by the slope of the correlation between N<sub>2</sub>O and O<sub>3</sub> between 415 and 490 K, does not appear as a sharp border between the tropics and extratropics, but rather as a gradual transition region between 10 and 25° N latitude where isentropic mixing between these two regions may occur.
A data set of annual values of area equipped for irrigation for all 236 countries in the world during the time period 1900 - 2003 was generated. The basis for this data product was information available through various online data bases and from other published materials. The complete time series were then constructed around the reported data applying six statistical methods. The methods are discussed in terms of reliability and data uncertainties. The total area equipped for irrigation in the world in 1900 was 53.2 million hectares. Irrigation was mainly practiced in all the arid regions of the globe and in paddy rice areas of South and East Asia. In some temperate countries in Western Europe irrigation was practiced widely on pastures and meadows. The time series suggest a modest rate of increase of irrigated areas in the first half of the 20th century followed by a more dynamic development in the second half. The turn of the century is characterized by an overall consolidating trend resulting at a total of 285.8 million hectares in 2003. The major contributing countries have changed little throughout the century. This data product is regarded as a preliminary result toward an ongoing effort to develop a detailed data set and map of areas equipped for irrigation in the world over the 20th century using sub-national statistics and historical irrigation maps.
Carbonate archives record a brief snapshot of the ambient Earth’s surface conditions at their deposition. However, the geologically reasonable extraction and interpretation of geochemical proxy data from ancient, diagenetically altered rock archives is fraught with problems. Three issues stand out: the dichotomy between petrographic and geochemical alteration; the lack of quantitative age constraints for specific diagenetic phases resulting in a poorly constrained admixture of local, basin-wide and over-regional (far-field) features; and an often insufficient understanding of the temperatures and compositions of diagenetic fluids. Here, the archive of Devonian marine limestones exposed to multiple far-field diagenetic events is used as an example to explore the above-listed issues. Methods applied include petrography, micro XRF, fluid inclusion data, clumped isotopes, δ13C and δ18O isotopes, 87Sr/86Sr ratios and quartz trace element data. Devonian limestones studied here were overprinted by two cross-cutting regional fault zones (T ≈ 230 °C) by multiple events between the Variscan Orogeny and the late Paleogene. The following processes are recorded: (i) protolith deposition and partial dolomitisation during rapid burial in the Middle/Late Devonian (T ≈ 180 °C); (ii) deep burial to ca 6.5 km and tectonic/hydrothermal overprint during the Variscan Orogeny in the Carboniferous (T ≈ 90–230 °C); (iii) rapid uplift to 1–2 km burial depth at the end of the Variscan Orogeny and hypogene karstification (T ≈ 50 to 100 °C) initiated by regional geology in the Permian/Triassic; (iv) tectonic/hydrothermal overprint during the opening of the Proto-Atlantic Ocean between the Early Jurassic and the Early Cretaceous (T ≈ 50 to 130 °C); (v) tectonic/hydrothermal overprint including renewed hypogene karstification and hydrothermal calcite cement precipitation (T ≈ 50 to 180 °C) during Alpine Orogeny between the Late Cretaceous and late Paleogene. Despite this complex series of diagenetic events, the protolith limestones largely preserved their respective Middle/Late Devonian dissolved inorganic carbon (DIC) and 87Sr/86Sr signatures. This study documents that geochemical proxy data, placed into their petrographic, paleotemperature, and local to over-regional context, significantly increases the ability to extract quantitative information from ancient carbonate rock archives. Research shown here has wider relevance for carbonate archive research in general.
We have used the SLIMCAT 3-D off-line chemical transport model (CTM) to quantify the Arctic chemical ozone loss in the year 2002/2003 and compare it with similar calculations for the winters 1999/2000 and 2003/2004. Recent changes to the CTM have improved the model's ability to reproduce polar chemical and dynamical processes. The updated CTM uses σ-θ as a vertical coordinate which allows it to extend down to the surface. The CTM has a detailed stratospheric chemistry scheme and now includes a simple NAT-based denitrification scheme in the stratosphere.
In the model runs presented here the model was forced by ECMWF ERA40 and operational analyses. The model used 24 levels extending from the surface to ~55 km and a horizontal resolution of either 7.5°×7.5° or 2.8°×2.8°. Two different radiation schemes, MIDRAD and the CCM scheme, were used to diagnose the vertical motion in the stratosphere. Based on tracer observations from balloons and aircraft, the more sophisticated CCM scheme gives a better representation of the vertical transport in this model which includes the troposphere. The higher resolution model generally produces larger chemical O3 depletion, which agrees better with observations.
The CTM results show that very early chemical ozone loss occurred in December 2002 due to extremely low temperatures and early chlorine activation in the lower stratosphere. Thus, chemical loss in this winter started earlier than in the other two winters studied here. In 2002/2003 the local polar ozone loss in the lower stratosphere was ~40% before the stratospheric final warming. Larger ozone loss occurred in the cold year 1999/2000 which had a persistently cold and stable vortex during most of the winter. For this winter the current model, at a resolution of 2.8°×2.8°, can reproduce the observed loss of over 70% locally. In the warm and more disturbed winter 2003/2004 the chemical O3 loss was generally much smaller, except above 620 K where large losses occurred due to a period of very low minimum temperatures at these altitudes.
We have used the SLIMCAT 3-D off-line chemical transport model (CTM) to quantify the Arctic chemical ozone loss in the year 2002/2003 and compare it with similar calculations for the winters 1999/2000 and 2003/2004. Recent changes to the CTM have improved the model's ability to reproduce polar chemical and dynamical processes. The updated CTM uses σ-θ as a vertical coordinate which allows it to extend down to the surface. The CTM has a detailed stratospheric chemistry scheme and now includes a simple NAT-based denitrification scheme in the stratosphere.
In the model runs presented here the model was forced by ECMWF ERA40 and operational analyses. The model used 24 levels extending from the surface to ~55km and a horizontal resolution of either 7.5° x 7.5° or 2.8° x 2.8°. Two different radiation schemes, MIDRAD and the CCM scheme, were used to diagnose the vertical motion in the stratosphere. Based on tracer observations from balloons and aircraft, the more sophisticated CCM scheme gives a better representation of the vertical transport in this model which includes the troposphere. The higher resolution model generally produces larger chemical O3 depletion, which agrees better with observations.
The CTM results show that very early chemical ozone loss occurred in December 2002 due to extremely low temperatures and early chlorine activation in the lower stratosphere. Thus, chemical loss in this winter started earlier than in the other two winters studied here. In 2002/2003 the local polar ozone loss in the lower stratosphere was ~40% before the stratospheric final warming. Larger ozone loss occurred in the cold year 1999/2000 which had a persistently cold and stable vortex during most of the winter. For this winter the current model, at a resolution of 2.8° x 2.8°, can reproduce the observed loss of over 70% locally. In the warm and more disturbed winter 2003/2004 the chemical O3 loss was generally much smaller, except above 620K where large losses occurred due to a period of very low minimum temperatures at these altitudes.
Sulfuric acid is an important gas influencing atmospheric new particle formation (NPF). Both the binary (H2SO4-H2O) system, and the ternary system involving ammonia (H2SO4-H2O-NH3) may be important in the free troposphere. An essential step in the nucleation of aerosol particles from gas-phase precursors is the formation of a dimer, so an understanding of the thermodynamics of dimer formation over a wide range of atmospheric conditions is essential to describe NPF. We have used the CLOUD chamber to conduct nucleation experiments for these systems at temperatures from 208 to 248 K. Neutral monomer and dimer concentrations of sulfuric acid were measured using a Chemical Ionization Mass Spectrometer (CIMS). From these measurements dimer evaporation rates in the binary system were derived for temperatures of 208 and 223 K. We compare these results to literature data from a previous study that was conducted at higher temperatures but is in good agreement with the present study. For the ternary system the formation of H2SO4·NH3 is very likely an essential step in the formation of sulfuric acid dimers, which were measured at 210, 223, and 248K. We estimate the thermodynamic properties (dH and dS) of the H2SO4·NH3 cluster using a simple heuristic model and the measured data. Furthermore, we report the first measurements of large neutral sulfuric acid clusters containing as many as 10 sulfuric acid molecules for the binary system using Chemical Ionization-Atmospheric Pressure interface-Time Of Flight (CI-APi-TOF) mass spectrometry.
Sulfuric acid is an important gas influencing atmospheric new particle formation (NPF). Both the binary (H2SO4–H2O) system and the ternary system involving ammonia (H2SO4–H2O–NH3) may be important in the free troposphere. An essential step in the nucleation of aerosol particles from gas-phase precursors is the formation of a dimer, so an understanding of the thermodynamics of dimer formation over a wide range of atmospheric conditions is essential to describe NPF. We have used the CLOUD chamber to conduct nucleation experiments for these systems at temperatures from 208 to 248 K. Neutral monomer and dimer concentrations of sulfuric acid were measured using a chemical ionization mass spectrometer (CIMS). From these measurements, dimer evaporation rates in the binary system were derived for temperatures of 208 and 223 K. We compare these results to literature data from a previous study that was conducted at higher temperatures but is in good agreement with the present study. For the ternary system the formation of H2SO4·NH3 is very likely an essential step in the formation of sulfuric acid dimers, which were measured at 210, 223, and 248 K. We estimate the thermodynamic properties (dH and dS) of the H2SO4·NH3 cluster using a simple heuristic model and the measured data. Furthermore, we report the first measurements of large neutral sulfuric acid clusters containing as many as 10 sulfuric acid molecules for the binary system using chemical ionization–atmospheric pressure interface time-of-flight (CI-APi-TOF) mass spectrometry.
Melt segregation inside the earth consists of two different processes: 1) Generation of partially molten rock and 2) separation of melt, produced from partially molten rock, from the solid residual matrix. This thesis focuses on the later process. The 2 phase flow dynamics combines the study of flow dynamics of melt and matrix. Several studies have given the background theoretical frameworks for the flow dynamics of melt inside the earth. [McKenzie, 1984] summarizes the studies of [Ahern and Turcotte, 1979; Frank, 1968; Sleep, 1975] and gives a complete set of governing equations for the 2-phase flow problem.
[Bercovici et al., 2001] gives a general formulation considering the univariate system of equations related to matrix and melt flow which includes the interfacial surface force. The assumption of melt having negligible viscosity compare to the matrix has been abandoned. Therefore, based on these formulations, we have constructed our numerical model and thereafter a fortran code PERCOL2D to get an insight of melt percolation process through porous media. Additionally, we have used the Helmhotz decomposition, which splits a smooth and rapidly decaying vector field into an irrotational vector field and an incompressible vector field [Srámek, 2007], for matrix and fluid viscosity in order to lower the number of linearly independent variables to minimize the computational complications. The melt residing at inter-granular areas of lithosphere, forms an interconnected network even at low porosity. Therefore, being less dense than the matrix, melt moves up through porous media due to its buoyancy. Compaction of matrix, which occurs to compensate the melt separation, is considered in this thesis, where the effective bulk and shear viscosity of matrix are function of melt fraction. We have effective bulk viscosity of matrix as inversely proportional to melt fraction. Porosity dependence of effective bulk and shear viscosity leads to stronger melt focusing in highly porous region like mid ocean ridges [Katz, 2008] since the ratio of bulk and shear viscosity is smaller (< 10) than the constant viscosity case for the porous waves having non dimensional amplitude 5% or higher. Moreover, it is observed in [Richard et al., 2012] that the solitary wave formed in porosity dependent viscous matrix settings are steeper than the one formed in the constant matrix viscosity setting.
Firstly some 1D numerical experiments with PERCOL2D have been carried out using fixed and periodic boundary conditions for zero source term (i.e. no melting or no freezing) and negligible surface tension.
3 series of model setups with different initial conditions have been carried out varying the width, non-dimensional amplitude and the background porosity value of the initial input of porous wave.
A mathematical derivation for 1D solitary wave solution for the two phase flow through porosity dependent compacting media, is obtained in this thesis which is different than the study of [Barcilon and Lovera, 1989; Barcilon and Richter, 1986; Scott and Stevenson, 1984; Spiegelman, 1993a,b] as the effective viscosity of matrix is constant there.
Although [Simpson and Spiegelman, 2011] gives the solitary wave solutions in 1D, 2D and 3D considering the porosity dependent effective viscosity of the matrix, but using the small background porosity approximation, they neglect the background porosity (i.e φ0) and therefore the effect of variation of compaction lengths, which causes variation in the shape and dynamics of the solitary wave. Therefore, the study [This thesis, Richard et al., 2012] can be used for more general purpose. Solitary waves in varying viscous medium, are steeper (cf fig.5.1) compared to the one in constant viscous medium and their speed decreases as an inverse function of the background porosity. Additionally, this analytical solution is used in our code PERCOL2D and also in FDCON for numerical benchmarking (1D) of PERCOL2D.
The role of melt grain contiguity is considered in the revised viscosity formulation [Schmeling et al., 2012] based on elastic moduli theory of a fluid filled poro-elastic medium. This formulation is used in this thesis to produce a comparative dispersion relationship between speed of the wave and the non dimensional amplitude of porous wave, based on both the viscosity formulations (fig. 6.20) where one can see that the model based on [Bercovici et al., 2001] formulation, converges to the same dispersion relationship obtained from [Simpson and Spiegelman, 2011]. Whereas, the dispersion relationship using [Schmeling et al., 2012] formulations, shows time-dependent decrease of phase velocity with increasing amplitude and it is not yet clear that whether these solutions converge to steady state porosity waves before the porosity becomes 1.
Increases in water demand often result in unsustainable water use, leaving insufficient amounts of water for the environment. Therefore, water-saving strategies have been introduced to the environmental policy agenda in many (semi)-arid regions. As many such interventions failed to reach their objectives, a comprehensive tool is needed to assess them. We introduced a constructive framework to assess the proposed strategies by estimating five key components of the water balance in an area: (1) Demand; (2) Availability; (3) Withdrawal; (4) Depletion and (5) Outflow. The framework was applied to assess the Urmia Lake Restoration Program (ULRP) which aimed to increase the basin outflow to the lake to reach 3.1 × 109 m3 yr−1. Results suggested that ULRP could help to increase the Outflow by up to 57%. However, successful implementation of the ULRP was foreseen to be impeded because of three main reasons: (i) decreasing return flows; (ii) increased Depletion; (iii) the impact of climate change. Decreasing return flows and increasing Depletion were expected due to the introduction of technologies that increase irrigation efficiency, while climate change could decrease future water availability by an estimated 3–15%. We suggest that to reach the intervention target, strategies need to focus on reducing water depletion rather than water withdrawals. The framework can be used to comprehensively assess water-saving strategies, particularly in water-stressed basins.
The reanalysis products and derived products, ERA5 (Copernicus Climate Change Service, 2018) and W5E5 (WATCH Forcing Data (WFD) methodology applied to ERA5) (LANGE ET AL., 2021) have been recently published initiating a new phase of scientific research utilizing these datasets. ERA5 and W5E5 offer the possibility to reduce insecurities in model results through their improved quality compared to previous climate reanalyses (CUCCHI ET AL., 2020). The suitability of either climate forcing as input for the hydrological model WaterGAP and the influence of the models specific calibration routine has been evaluated with four model experiments. The model was validated by analysing the models ability to produce reasonable values for global water balance components and to reproduce observed discharge in 1427 basins as well as total water storage anomalies in 143 basins using well established efficiency metrics. Bias correction of W5E5 was found to lead to more global realistic mean precipitation and consequently discharge and AET values. In an uncalibrated model setup ERA5 results in better performances across all efficiency metrics. Model results produced with W5E5 as climate input were strongly improved through calibration ultimately leading to the best performances out of all four model experiments. However, model performances considerably improved through calibration with both climate forcings hence calibration was found to have the strongest effect on model performance. Furthermore, spatial differences in performance of either forcing were identified. Snow-dominated regions show an overall better performance with ERA5, while wetter and warmer regions are better represented with W5E5. Finally, it can be concluded that W5E5 should be preferred as climate input for impact modelling; however, depending on the spatial scale and region ERA5 should at least be considered, in particular for snow-dominated regions.
The present PhD thesis comprises structural geology, petrographic and geochronological investiga-tions on crystalline rocks of the Uppermost Unit in the southern Aegean realm. Studies were carried out in three areas: (1) on the island of Anafi, (2) in the area west of Melambes in central Crete and (3) between the villages of Pefkos, Kalami and Sykologos in the municipality of Viannos in eastern Crete.
The Uppermost Unit forms together with the underlying, non-metamorphic Pindos Unit the upper nappe system of the Cretan nappe pile that, unlike the units of the lower nappe system, was not affected by Late Oligocene to Early Miocene subduction-related metamorphism. The upper nappe system must therefore have been at upper levels of the lithosphere in the Late Oligocene. This is of particular im-portance when reconstructing the tectonometamorphic evolution of the Uppermost Unit. The Upper-most Unit is very heterogeneous in composition and is subdivided into several subunits, which differ mainly in their lithological composition and the degree of metamorphic overprint. Usually, it is subdi-vided into several low-grade metamorphic subunits and one high-grade metamorphic subunit. Within the scope of this PhD thesis, three of these subunits were examined; (1) the anchimetamorphic Arvi Unit, (2) the newly described Greenschist Unit and (3) the Asterousia Crystalline Complex (ACC).
The analyses conducted during this PhD thesis include: (1) structural geology investigations in the field, (2) microstructural and petrographic analyses on thin sections, (3) radiometric dating of zircons using isotope dilution thermal ionisation mass spectrometry (ID-TIMS) and laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS), (4) electron microprobe (EMP) analysis, (5) quartz texture analysis using electron-backscattered diffraction (EBSD), (6) semiquantitative analysis of min-eral phases using X-ray powder diffraction (XRD), (7) analysis of the modal composition of intrusive rocks applying point counting on thin sections and (8) X-ray microtomography (micro-CT) on chias-tolite hornfels.
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Biomass burning impacts vegetation dynamics, biogeochemical cycling, atmospheric chemistry, and climate, with sometimes deleterious socio-economic impacts. Under future climate projections it is often expected that the risk of wildfires will increase. Our ability to predict the magnitude and geographic pattern of future fire impacts rests on our ability to model fire regimes, using either well-founded empirical relationships or process-based models with good predictive skill. While a large variety of models exist today, it is still unclear which type of model or degree of complexity is required to model fire adequately at regional to global scales. This is the central question underpinning the creation of the Fire Model Intercomparison Project (FireMIP), an international initiative to compare and evaluate existing global fire models against benchmark data sets for present-day and historical conditions. In this paper we review how fires have been represented in fire-enabled dynamic global vegetation models (DGVMs) and give an overview of the current state of the art in fire-regime modelling. We indicate which challenges still remain in global fire modelling and stress the need for a comprehensive model evaluation and outline what lessons may be learned from FireMIP.
Biomass burning impacts vegetation dynamics, biogeochemical cycling, atmospheric chemistry, and climate, with sometimes deleterious socio-economic impacts. Under future climate projections it is often expected that the risk of wildfires will increase. Our ability to predict the magnitude and geographic pattern of future fire impacts rests on our ability to model fire regimes, either using well-founded empirical relationships or process-based models with good predictive skill. A large variety of models exist today and it is still unclear which type of model or degree of complexity is required to model fire adequately at regional to global scales. This is the central question underpinning the creation of the Fire Model Intercomparison Project - FireMIP, an international project to compare and evaluate existing global fire models against benchmark data sets for present-day and historical conditions. In this paper we summarise the current state-of-the-art in fire regime modelling and model evaluation, and outline what lessons may be learned from FireMIP.
This study reports and discusses new radiometric ages, petrographical and volcanological observations and whole rock geochemical data of the rocks of the Rudnik Mts. volcano-intrusive complex. The complex hosts a Pb-Zn-Ag deposit and belongs to the Serbo-Macedonian metallogenetic belt. Two distinct igneous events are distignuished. The first occurred >30 Ma and was mainly characterized by extrusive and shallow intrusive dacites and andesites and was unrelated to mineralization. The second igneous event occurred <23 Ma and was highly heterogeneous in terms of volcanic products and petrographic varieties, but with predominance of quartzlatites. The dacite-andesites (first event) and the quartzlatites (second event) are geochemically similar and display a calc-alkaline affinity and highly incompatible element enriched patterns on spider diagrams, but the younger quartzlatites are richer in K2O, Rb and Ba and poorer in Sr. This is taken as evidence that mixing between an ultrapotassic lamprophyre/lamproite magma and an acid calc-alkaline (dacite-like) magma was essential petrogenetic processes during the second event. The proposed simplified volcanological model suggests that this mixing was responsible for triggering strongly explosive volcanic activity as well as for providing conditions for active hydrothermal and mineralization processes. The observed link between a specific magmatic phase and ore deposit formation can be a general phennomenon in the Balkans, and must be addressed by further and more advanced studies.
About half of present-day cloud condensation nuclei originate from atmospheric nucleation, frequently appearing as a burst of new particles near midday1. Atmospheric observations show that the growth rate of new particles often accelerates when the diameter of the particles is between one and ten nanometres2,3. In this critical size range, new particles are most likely to be lost by coagulation with pre-existing particles4, thereby failing to form new cloud condensation nuclei that are typically 50 to 100 nanometres across. Sulfuric acid vapour is often involved in nucleation but is too scarce to explain most subsequent growth5,6, leaving organic vapours as the most plausible alternative, at least in the planetary boundary layer7,8,9,10. Although recent studies11,12,13 predict that low-volatility organic vapours contribute during initial growth, direct evidence has been lacking. The accelerating growth may result from increased photolytic production of condensable organic species in the afternoon2, and the presence of a possible Kelvin (curvature) effect, which inhibits organic vapour condensation on the smallest particles (the nano-Köhler theory)2,14, has so far remained ambiguous. Here we present experiments performed in a large chamber under atmospheric conditions that investigate the role of organic vapours in the initial growth of nucleated organic particles in the absence of inorganic acids and bases such as sulfuric acid or ammonia and amines, respectively. Using data from the same set of experiments, it has been shown15 that organic vapours alone can drive nucleation. We focus on the growth of nucleated particles and find that the organic vapours that drive initial growth have extremely low volatilities (saturation concentration less than 10−4.5 micrograms per cubic metre). As the particles increase in size and the Kelvin barrier falls, subsequent growth is primarily due to more abundant organic vapours of slightly higher volatility (saturation concentrations of 10−4.5 to 10−0.5 micrograms per cubic metre). We present a particle growth model that quantitatively reproduces our measurements. Furthermore, we implement a parameterization of the first steps of growth in a global aerosol model and find that concentrations of atmospheric cloud concentration nuclei can change substantially in response, that is, by up to 50 per cent in comparison with previously assumed growth rate parameterizations.
The formation of secondary particles in the atmosphere accounts for more than half of global cloud condensation nuclei. Experiments at the CERN CLOUD (Cosmics Leaving OUtdoor Droplets) chamber have underlined the importance of ions for new particle formation, but quantifying their effect in the atmosphere remains challenging. By using a novel instrument setup consisting of two nano-particle counters, one of them equipped with an ion filter, we were able to further investigate the ion-related mechanisms of new particle formation. In autumn 2015, we carried out experiments at CLOUD on four systems of different chemical compositions involving monoterpenes, sulfuric acid, nitrogen oxides, and ammonia. We measured the influence of ions on the nucleation rates under precisely controlled and atmospherically relevant conditions. Our results indicate that ions enhance the nucleation process when the charge is necessary to stabilize newly formed clusters, i.e. in conditions where neutral clusters are unstable. For charged clusters that were formed by ion-induced nucleation, we were able to measure, for the first time, their progressive neutralization due to recombination with oppositely charged ions. A large fraction of the clusters carried a charge at 1.2 nm diameter. However, depending on particle growth rates and ion concentrations, charged clusters were largely neutralized by ion–ion recombination before they grew to 2.2 nm. At this size, more than 90 % of particles were neutral. In other words, particles may originate from ion-induced nucleation, although they are neutral upon detection at diameters larger than 2.2 nm. Observations at Hyytiälä, Finland, showed lower ion concentrations and a lower contribution of ion-induced nucleation than measured at CLOUD under similar conditions. Although this can be partly explained by the observation that ion-induced fractions decrease towards lower ion concentrations, further investigations are needed to resolve the origin of the discrepancy.
Diverse epidermal appendages including grouped filaments closely resembling primitive feathers in non-avian theropods, are associated with skeletal elements in the primitive ornithischian dinosaur Kulindadromeus zabaikalicus from the Kulinda locality in south-eastern Siberia. This discovery suggests that “feather-like” structures did not evolve exclusively in theropod dinosaurs, but were instead potentially widespread in the whole dinosaur clade. The dating of the Kulinda locality is therefore particularly important for reconstructing the evolution of “feather-like” structures in dinosaurs within a chronostratigraphic framework. Here we present the first dating of the Kulinda locality, combining U-Pb analyses (LA-ICP-MS) on detrital zircons and monazites from sedimentary rocks of volcaniclastic origin and palynological observations. Concordia ages constrain the maximum age of the volcaniclastic deposits at 172.8 ± 1.6 Ma, corresponding to the Aalenian (Middle Jurassic). The palynological assemblage includes taxa that are correlated to Bathonian palynozones from western Siberia, and therefore constrains the minimum age of the deposits. The new U-Pb ages, together with the palynological data, provide evidence of a Bathonian age—between 168.3 ± 1.3 Ma and 166.1 ± 1.2 Ma—for Kulindadromeus. This is older than the previous Late Jurassic to Early Cretaceous ages tentatively based on local stratigraphic correlations. A Bathonian age is highly consistent with the phylogenetic position of Kulindadromeus at the base of the neornithischian clade and suggests that cerapodan dinosaurs originated in Asia during the Middle Jurassic, from a common ancestor that closely looked like Kulindadromeus. Our results consequently show that Kulindadromeus is the oldest known dinosaur with “feather-like” structures discovered so far.
In order to achieve climate change mitigation, long-term decisions are required that must be reconciled with other societal goals that draw on the same resources. For example, ensuring food security for a growing population may require an expansion of crop land, thereby reducing natural carbon sinks or the area available for bio-energy production. Here, we show that current impact-model uncertainties pose an important challenge to long-term mitigation planning and propose a new risk-assessment and decision framework that accounts for competing interests.
Based on cross-sectorally consistent simulations generated within the Inter-Sectoral Impact Model Intercomparison Project (ISI-MIP) we discuss potential gains and limitations of additional irrigation and trade-offs of the expansion of agricultural land as two possible response measures to climate change and growing food demand. We describe an illustrative example in which the combination of both measures may close the supply demand gap while leading to a loss of approximately half of all natural carbon sinks.
We highlight current limitations of available simulations and additional steps required for a comprehensive risk assessment.
The late Miocene palaeorecord provides evidence for a warmer and wetter climate than that of today, and there is uncertainty in the palaeo-CO2 record of at least 200 ppm. We present results from fully coupled atmosphere-ocean-vegetation simulations for the late Miocene that examine the relative roles of palaeogeography (topography and ice sheet geometry) and CO2 concentration in the determination of late Miocene climate through comprehensive terrestrial model-data comparisons. Assuming that these data accurately reflect the late Miocene climate, and that the late Miocene palaeogeographic reconstruction used in the model is robust, then results indicate that:
1. Both palaeogeography and atmospheric CO2 contribute to the proxy-derived precipitation differences between the late Miocene and modern reference climates. However these contributions exibit synergy and so do not add linearly.
2. The vast majority of the proxy-derived temperature differences between the late Miocene and modern reference climates can only be accounted for if we assume a palaeo-CO2 concentration towards the higher end of the range of estimates.
The Late Miocene (∼11.6–5.3 Ma) palaeorecord provides evidence for a warmer and wetter climate than that of today and there is uncertainty in the palaeo-CO2 record of at least 150 ppmv. We present results from fully coupled atmosphere-ocean-vegetation simulations for the Late Miocene that examine the relative roles of palaeogeography (topography and ice sheet geometry) and CO2 concentration in the determination of Late Miocene climate through comprehensive terrestrial model-data comparisons. Assuming that the data accurately reflects the Late Miocene climate, and that the Late Miocene palaeogeographic reconstruction used in the model is robust, then results indicate that the proxy-derived precipitation differences between the Late Miocene and modern can be largely accounted for by the palaeogeographic changes alone. However, the proxy-derived temperatures differences between the Late Miocene and modern can only begin to be accounted for if we assume a palaeo-CO2 concentration towards the higher end of the range of estimates.
The prediction of climate on time scales of years to decades is attracting the interest of both climate researchers and stakeholders. The German Ministry for Education and Research (BMBF) has launched a major research programme on decadal climate prediction called MiKlip (Mittelfristige Klimaprognosen, Decadal Climate Prediction) in order to investigate the prediction potential of global and regional climate models (RCMs). In this paper we describe a regional predictive hindcast ensemble, its validation, and the added value of regional downscaling. Global predictions are obtained from an ensemble of simulations by the MPI-ESM-LR model (baseline 0 runs), which were downscaled for Europe using the COSMO-CLM regional model. Decadal hindcasts were produced for the 5 decades starting in 1961 until 2001. Observations were taken from the E-OBS data set. To identify decadal variability and predictability, we removed the long-term mean, as well as the long-term linear trend from the data. We split the resulting anomaly time series into two parts, the first including lead times of 1–5 years, reflecting the skill which originates mainly from the initialisation, and the second including lead times from 6–10 years, which are more related to the representation of low frequency climate variability and the effects of external forcing. We investigated temperature averages and precipitation sums for the summer and winter half-year. Skill assessment was based on correlation coefficient and reliability. We found that regional downscaling preserves, but mostly does not improve the skill and the reliability of the global predictions for summer half-year temperature anomalies. In contrast, regionalisation improves global decadal predictions of half-year precipitation sums in most parts of Europe. The added value results from an increased predictive skill on grid-point basis together with an improvement of the ensemble spread, i.e. the reliability.
Funded by the German Ministry for Education and Research (BMBF) a major research project called MiKlip (Mittelfristige Klimaprognose, Decadal Climate Prediction) was launched and global as well as regional predictive ensemble hindcasts have been generated. The aim of the project is to demonstrate for past climate change whether predictive models have the capability of predicting climate on time scales of decades. This includes the development of a decadal forecast system, on the one hand to support decision making for economy, politics and society for decadal time spans. On the other hand, the scientific aspect is to explore the feasibility and prospects of global and regional forecasts on decadal time scales. The focus of this paper lies on the description of the regional hindcast ensemble for Europe generated by COSMO-CLM and on the assessment of the decadal variability and predictability against observations. To measure decadal variability we remove the long term bias as well as the long term linear trend from the data. Further, we applied low pass filters to the original data to separate the decadal climate signal from high frequency noise. The decadal variability and predictability assessment is applied to temperature and precipitation data for the summer and winter half-year averages/sums. The best results have been found for the prediction of decadal temperature anomalies, i.e. we have detected a distinct predictive skill and reasonable reliability. Hence it is possible to predict regional temperature variability on decadal timescales, However, the situation is less satisfactory for precipitation. Here we have found regions showing good predictability, but also regions without any predictive skill.
Until now, the NW Indian Ocean was sparsely covered with coral proxy records, and records from the Maldives Archipelago do not exist. The first such coral proxy record from the central Maldives is presented in this study. It originates from a massive Porites lutea (Quoy and Gaimard, 1833) colony that was sampled March 2007 in the lagoon of Rasdhoo Atoll (4°N/ 73°W), which is located in the central Maldives. The record spans a period of 90 yrs and reaches back to 1917 AD with monthly to bimonthly resolution. This study investigates temporal variations of the skeletal stable oxygen (delta18O) and carbon (delta13C) isotopes, the strontium-to-calcium (Sr/Ca), and the annual extension-rates, and their relationship to historical climate variations 1917-2007. Annual extension-rates show an increase over the 20th century, and are correlated with instrumental sea surface temperatures (SST). The interannual variation of the extension-rates within 2.5-4 years is driven by the El Niño-Southern Oscillation (ENSO). The amount of skeletal extension during the summer months is triggered by variations in the strength of the SW monsoon. Interannual and decadal variability in monsoon current activity (18-19 yrs) and rainfall over India are an expression of the summer monsoon strength. This is the reason why a statistical link between coral extension-rates and precipitation over India can be established. This implies that annual extension-rates in corals can be used as a new proxy for Indian monsoon variability on decadal resolution. The delta18O record exhibits the 20th century warming trend that is influenced by the effect of monsoon-induced cooling. delta18O also reveals interannual ENSO triggered variability, which is due to ENSO-forced variations in SST and sea surface salinity (SSS). A decadal variation at 12-14 yrs cannot be linked to SST variations in the NW Indian Ocean, but with decadal variations of SSS. They could be caused by ENSO- forced variations of the monsoon currents during the mature phase of ENSO teleconnections in the Indian Ocean in boreal winter. The Sr/Ca record does not indicate a significant warming, in spite of the observed SST rise at the sampling site. Changes in seawater Sr/Ca cannot be excluded. Nevertheless, interannual ENSO forcing is still evident. Evidence for the Pacific Decadal Oscillation (PDO) is found during 1917-1955. Afterwards, the Sr/Ca data indicate the disappearance of PDO forcing. By the combination of Sr/Ca and delta18O it is possible to detect ~80% of historical El Niño and La Niña events at the sample site. This study confirms the notion that interannual to multi-decadal climate fluctuations in the Pacific play a crucial role for climate variability in the Indian Ocean.
The Sahel has been the focus of scientific interest in environmental-human dynamics and interactions. The objective of the present study is to contribute to the recent debate on the re-greening of Sahel. The paper examines the dynamics of barren land in the Sahel of Burkina Faso through analysis of remotely-sensed and rainfall data from 1975–2011. Discussions with farmers and land management staff have helped to understand the anthropogenic efforts toward soil restoration to enable the subsistence farming agriculture. Results showed that area of barren land has been fluctuating during the study period with approximately 10-year cyclicity. Similarly, rainfall, both at national and local levels has followed the same trends. The trends of the area of barren land and rainfall variability suggest that when rainfall increases, the area of barren land decreases and barren land increases when rainfall decreases. This implies that rainfall is one of the main factors driving the change in area of barren land. In addition, humans have contributed positively and negatively to the change by restoring barren lands for agriculture using locally known techniques and by accelerating land degradation through intensive and inappropriate land use practices.
The aim of this study is a better understanding of radiation processes in regional climate models (RCMs) in order to quantify their impact and to reduce possible errors. A first important task in finding an answer to this question was to examine the accuracy of the components of the radiation budget in regional climate simulations. To this end, the simulated radiation budgets of two regional climate simulations for Europe were compared with a satellite-based reference. In the simulations with the RCM COSMO-CLM there were some serious under- and overestimations of short- and long-wave net radiation in Europe. However, taking into account the differences in the reference datasets, the results of the COSMO-CLM were quite satisfactory.
Using statistical methods, the influence of potential sources of uncertainties was estimated. Uncertainties in the cloud cover and surface albedo had a significant impact on uncertainties in short-wave net radiation, the explained variance of uncertainties in cloud cover was two to three times higher than that of uncertainties in surface albedo. Uncertainties in the cloud cover resulted in significant errors in the net long-wave radiation. However, the influence of uncertainties in soil temperature on errors in the long-wave radiation budget was low or even negligible. These results were confirmed in a comparison with simulations of the REMO and ALADIN regional climate models. It is reasonable to expect that a better parameterization of relatively simple parameters such as cloud cover and surface albedo is a means of significantly improving the simulation of radiation budget components in the COSMO-CLM.
An important question for the application of RCMs is to examine whether the results of radiation uncertainties and their impact factors are comparable if the model is applied in a region that is not the one for which it was originally created. Comparisons of the simulated radiation budgets of different RCMs for West Africa showed that problems in the simulation of short- and long-wave radiation fluxes were a widespread problem. Most of the tested models showed some considerable under- or overestimation of the short- and long-wave radiation fluxes.
Similar to Europe uncertainties in cloud cover were also in the simulations for Africa a significant factor affecting uncertainties in the simulated radiation fluxes. However, for the African simulations uncertainties in the parameterization of surface albedo were much more important than in Europe. On average, overland uncertainties in the cloud cover and surface albedo were of similar importance. Uncertainties in soil temperature simulations were of higher importance in Africa, and reached overland similar values of the mean explained variance (R2 ≈ 0.2) such as uncertainties in the cloud cover. This indicates a geographical dependence of the model error. This study confirmed the assumption that an improved parameterization of relatively simple parameters such as the surface albedo in RCMs leads to a significant improvement in the modeled radiation budget, particularly in Africa.
The influence of errors in the simulated radiation budget components on the simulation of climate processes, such as the West-African monsoon (WAM), was investigated in a next step. The evaluation of ERA-Interim and ECHAM5 driven COSMO-CLM simulations for Africa showed that the main features of the WAM were well reproduced by the model, but there were only slight improvements compared to the driving data. The index of convective activity in the model simulations was much too high and precipitation was underestimated in large parts of tropical Africa. The partly considerable differences between the ERA-Interim and ECHAM5 driven simulations demonstrated the sensitivity of the RCM to the boundary conditions and in particular to the sea surface temperature. An excessive northwards shift of the monsoon in the model was influenced by the land-sea temperature gradient and the strength of the Saharan heat low. Consequently, a part of the error was due to the driving data and the model itself produced another part.
By modifying the parameterization of the bare soil albedo the errors in the radiation budget and 2 m temperature in the Sahara region were significantly reduced. Similarly, the overesti-mation of precipitation and convection has been reduced in the Sahel. The effect of this modifi-cation on the examined WAM area was low. This confirmed that especially in desert regions, errors in the surface albedo were a driving factor for errors in the radiation budget. However, there are other important factors not yet sufficiently understood that have a strong influence on the quality of the simulation of the WAM.
The analysis of the actual state, the quantification of error sources and the highlighting of connections made it possible to find means to reduce uncertainties in the simulated radiation in RCMs and to have a better understanding of radiation processes. However, the magnitude of the errors found, the number of possible influencing factors, and the complexity of interactions, indicate that there is still a need for further research in this area.
Highlights
• Solidification and cooling of an intruded dyke or sill within the middle or shallow crust generate stresses of order 200 MPa, which relax on time scales of a few years to million years.
• Stresses may exceed the brittle strength forming tensile fractures.
• Combined with the pressure gradient within the over-pressurized felsic melts, this explains the migration of felsic contact melt into shrinkage cracks (Sederholm-type veins).
Abstract
Rapid emplacement of a mafic dyke or sill at mid-crustal depth heats and possibly melts the felsic wall rock followed by solidification. Associated volume changes generate stresses, possibly enforcing brittle failure and melt migration. We model the evolution of melting, solidification, temperature, and stress including visco-elastic relaxation in 1D - dykes or -sills using realistic rock rheologies of the Weschnitz pluton (Odenwald). For deep emplacement (Case 1, 15.3 km) extensive contact melting of the wall rock occurs, for shallow emplacement (Case 2, 10 km) it is negligible. The stresses are zero at high melt fractions, but increase during solidification and cooling: The intrusion orthogonal stress is always zero. The intrusion parallel stress σ‖ within the intrusion is tensile (O(200 MPa)). It relaxes on a time scale between a few years (Case 1) and 0.6 m.y. (Case 2). Within the wall rock σ‖ is compressive during heating, but becomes tensile under solidification and cooling. Wall rock stresses relax on a time scale of months to 100 years. A Deborah number is defined based on viscous to thermal relaxation allowing generalization of our results. Adding lithostatic stresses, the total stresses of Case 1 remain below the brittle strength, while for Case 2 they may exceed it. Adding the lithostatic pressure to the melt pressure, the effective stresses exceed the brittle strength and intrusion orthogonal tensile fractures are predicted. Combined with the pressure gradient within the over-pressurized felsic melts generated in the wall rock, this explains the migration of felsic contact melt into shrinkage cracks of the mafic sill in the Weschnitz pluton.
Cenozoic lignite deposits are widespread across Europe, Asia, America, Australia, and Indonesia. These deposits were the subject of numerous studies on changes in regional/global paleoclimates, paleobotany, paleoenvironment, and basin evolutions, which led to the formation of these lignites. In some of these Cenozoic lignite deposit basins, a succession of pale and dark lignite layers has been described in the Miocene Lower Rhine Basin in Germany, the Oligo-Miocene Gippsland Basin in southeastern Australia, and several Mio-Pliocene basins in southwestern China. Furthermore, pale and dark lithotypes in lignite seams also have been found in some Pliocene lignite deposit basins from Slovenia, Serbia, and Poland. The widespread cyclic occurrence of pale and dark layers in lignite basins might represent alternating depositional conditions related to the changes in plant communities, the regional/global climate, the tectonic setting, the Asian monsoon, and orbital periodicity during peat formation. ...
Over the last several decades, spinel-structured minerals with the chemical formula AB2O4 (where A and B stand for divalent and trivalent cations, respectively) have attracted more and more attention, particularly with regards to their breakdown at high pressures and temperatures and the nature of the so-called "post-spinel" phases. Spinel-structured phases with different endmember compositions, like magnetite (Fe3O4), hercynite (FeAl2O4) or spinel (MgAl2O4), are known to breakdown differently at high pressure-temperature conditions (e.g., Akaogi et al. 1999; Schollenbruch et al. 2010; Woodland et al. 2012). Such phases are of particular interest when they incorporate ferric (Fe3+) and ferrous (Fe2+) cations as this makes their stability sensitive to redox conditions. Since magnetite and magnesioferrite (MgFe3+ 2O4) have been found as inclusions in diamond (e.g., Stachel et al. 1998; Harte et al. 1999; Wirth et al. 2014; Palot et al. 2016; Jacob et al. 2016), understanding their phase relations is important for setting constraints on the conditions of their formation.
This study aimed to experimentally investigate the phase relations of Fe-Mg spinel-structured phases at conditions of the deep upper mantle and transition zone. Exploring the stability of new post-spinel phases and their characterization were also major goals of this study. Approaching a pyrolitic mantle composition by adding amounts of SiO2 in the system allowed constraints on the relevance of Fe-Mg post-spinel phases coexisting with mantle silicates to be made. ...
The link between atmospheric radicals and newly formed particles at a spruce forest site in Germany
(2013)
It has been claimed for more than a century that atmospheric new particle formation is primarily influenced by the presence of sulphuric acid. However, the activation process of sulphuric acid related clusters into detectable particles is still an unresolved topic. In this study we focus on the PARADE campaign measurements conducted during August/September 2011 at Mt. Kleiner Feldberg in central Germany. During this campaign a set of radicals, organic and inorganic compounds and oxidants and aerosol properties were measured or calculated. We compared a range of organic and inorganic nucleation theories, evaluating their ability to simulate measured particle formation rates at 3 nm in diameter (J3) for a variety of different conditions. Nucleation mechanisms involving only sulphuric acid tentatively captured the observed noon-time daily maximum in J3, but displayed an increasing difference to J3 measurements during the rest of the diurnal cycle. Including large organic radicals, i.e. organic peroxy radicals (RO2) deriving from monoterpenes and their oxidation products in the nucleation mechanism improved the correlation between observed and simulated J3. This supports a recently proposed empirical relationship for new particle formation that has been used in global models. However, the best match between theory and measurements for the site of interest was found for an activation process based on large organic peroxy radicals and stabilized Criegee intermediates (sCI). This novel laboratory derived algorithm simulated the daily pattern and intensity of J3 observed in the ambient data. In this algorithm organic derived radicals are involved in activation and growth and link the formation rate of smallest aerosol particles with OH during daytime and NO3 during nighttime. Because of the RO2s lifetime is controlled by HO2 and NO we conclude that peroxy radicals and NO seem to play an important role for ambient radical chemistry not only with respect to oxidation capacity but also for the activation process of new particle formation. This is supposed to have significant impact of atmospheric radical species on aerosol chemistry and should to be taken into account when studying the impact of new particles in climate feedback cycles.
The link between atmospheric radicals and newly formed particles at a spruce forest site in Germany
(2014)
It has been claimed for more than a century that atmospheric new particle formation is primarily influenced by the presence of sulfuric acid. However, the activation process of sulfuric acid related clusters into detectable particles is still an unresolved topic. In this study we focus on the PARADE campaign measurements conducted during August/September 2011 at Mt Kleiner Feldberg in central Germany. During this campaign a set of radicals, organic and inorganic compounds and oxidants and aerosol properties were measured or calculated. We compared a range of organic and inorganic nucleation theories, evaluating their ability to simulate measured particle formation rates at 3 nm in diameter (J3) for a variety of different conditions. Nucleation mechanisms involving only sulfuric acid tentatively captured the observed noon-time daily maximum in J3, but displayed an increasing difference to J3 measurements during the rest of the diurnal cycle. Including large organic radicals, i.e. organic peroxy radicals (RO2) deriving from monoterpenes and their oxidation products, in the nucleation mechanism improved the correlation between observed and simulated J3. This supports a recently proposed empirical relationship for new particle formation that has been used in global models. However, the best match between theory and measurements for the site of interest was found for an activation process based on large organic peroxy radicals and stabilised Criegee intermediates (sCI). This novel laboratory-derived algorithm simulated the daily pattern and intensity of J3 observed in the ambient data. In this algorithm organic derived radicals are involved in activation and growth and link the formation rate of smallest aerosol particles with OH during daytime and NO3 during night-time. Because the RO2 lifetime is controlled by HO2 and NO we conclude that peroxy radicals and NO seem to play an important role for ambient radical chemistry not only with respect to oxidation capacity but also for the activation process of new particle formation. This is supposed to have significant impact of atmospheric radical species on aerosol chemistry and should be taken into account when studying the impact of new particles in climate feedback cycles.
The isotopic composition of methane in the stratosphere : high-altitude balloon sample measurements
(2011)
The isotopic composition of stratospheric methane has been determined on a large suite of air samples from stratospheric balloon flights covering subtropical to polar latitudes and a time period of 16 yr. 154 samples were analyzed for δC and 119 samples for δD, increasing the previously published dataset for balloon borne samples by an order of magnitude, and more than doubling the total available stratospheric data (including aircraft samples) published to date. The samples also cover a large range in mixing ratio from tropospheric values near 1800 ppb down to only 250 ppb, and the strong isotope fractionation processes accordingly increase the isotopic composition up to δ13C=−14‰ and δD= +190‰, the largest enrichments observed for atmospheric CH4 so far. When analyzing and comparing kinetic isotope effects (KIEs) derived from single balloon profiles, it is necessary to take into account the residence time in the stratosphere in combination with the observed mixing ratio and isotope trends in the troposphere, and the range of isotope values covered by the individual profile. Temporal isotope trends can also be determined in the stratosphere and compare reasonably well with the tropospheric trends. The effects of chemical and dynamical processes on the isotopic composition of CH4 in the stratosphere are discussed in detail. Different ways to interpret the data in terms of the relative fractions of the three important sink mechanisms (reaction with OH, O(1D)) and Cl, respectively), and their limitations, are investigated. The classical approach of using global mean KIE values can be strongly biased when profiles with different minimum mixing ratios are compared. Approaches for more local KIE investigations are suggested. It is shown that any approach for a formal sink partitioning from the measured data severely underestimates the fraction removed by OH, which is likely due to the insensitivity of the measurements to the kinetic fractionation in the lower stratosphere. Attempts can be made to correct for the lower stratospheric sink bias, but full quantitative interpretation of the CH4 isotope data in terms of the three sink reactions requires a global model.
The isotopic composition of methane in the stratosphere : high-altitude balloon sample measurements
(2011)
The isotopic composition of stratospheric methane has been determined on a large suite of air samples from stratospheric balloon flights covering subtropical to polar latitudes and a time period of 16 yr. 154 samples were analyzed for δ13C and 119 samples for δD, increasing the previously published dataset for balloon borne samples by an order of magnitude, and more than doubling the total available stratospheric data (including aircraft samples) published to date. The samples also cover a large range in mixing ratio from tropospheric values near 1800 ppb down to only 250 ppb, and the strong isotope fractionation processes accordingly increase the isotopic composition up to δ13C = −14‰ and δD = +190‰, the largest enrichments observed for atmospheric CH4 so far. When analyzing and comparing kinetic isotope effects (KIEs) derived from single balloon profiles, it is necessary to take into account the residence time in the stratosphere in combination with the observed mixing ratio and isotope trends in the troposphere, and the range of isotope values covered by the individual profile. The isotopic composition of CH4 in the stratosphere is affected by both chemical and dynamical processes. This severely hampers interpretation of the data in terms of the relative fractions of the three important sink mechanisms (reaction with OH, O(1D) and Cl). It is shown that a formal sink partitioning using the measured data severely underestimates the fraction removed by OH, which is likely due to the insensitivity of the measurements to the kinetic fractionation in the lower stratosphere. Full quantitative interpretation of the CH4 isotope data in terms of the three sink reactions requires a global model.
Die vorliegende Arbeit liefert einen Beitrag zum Verständnis der Rolle des RO x bei der troposphärischen Ozonbildung. Troposphärisches Ozon (O 3 ) spielt eine wichtige Rolle bei der Selbstreinigung der Atmosphäre. Andererseits führen erhöhte Ozonkonzentrationen zu gesundheitlichen Beeinträchtigungen beim Menschen und Schäden an Pflanzen und Umwelt. Die Anwesenheit von flüchtigen organischen Verbindungen (VOCs) führt zur Bildung von Peroxyradikalen (RO x ), die das normale photochemische Gleichgewicht zwischen Ozon und Stickoxiden zu Gunsten erhöhter OzonKonzentrationen verschieben. Im Rahmen der Arbeit wurde ein chemischer Verstärker zur Messung der GesamtPeroxyradikalkonzentration gebaut. RO x reagiert im Einlass des Gerätes mit hinzugefügtem NO und CO in einer Kettenreaktion und bildet dabei NO 2 . Dieses wird mit einem Luminoldetektor nachgewiesen. Der Detektor wird alle 2 Stunden kalibriert. Die Kettenlänge wird durch eine Kalibrierung des Gerätes mit HO 2 Radikalen bestimmt, die durch die Photolyse von H 2 O gebildet werden. Der Verstärkungsfaktor wurde in Bezug auf eine Querempfindlichkeit gegen Wasserdampf korrigiert. Die Messgenauigkeit ist etwa 70% bei 60% relativer Feuchte. Messungen am Taunus Observatorium auf dem Kleinen Feldberg in den Sommermonaten der beiden Jahre 1998 und 1999 werden vorgestellt. Die Ozon und RO x Konzentrationen sind gut miteinander korreliert. Allerdings ist die Tagestemperatur die für die Ozon und RO x Konzentrationen bei weitem wichtigste Einflussgröße und ist daher der beste Parameter zur statistischen Beschreibung von photochemischen Vorgängen. Auf der Grundlage der Messungen am Kleinen Feldberg wurde ein einfaches statistisches Modell zur Vorhersage des Ozonmaximums erstellt. Mit den Parametern Temperatur und Ozonkonzentration am Vortag konnte das statistische Modell bereits 80% der Variation der Ozonkonzentration erklären. Durch die Berücksichtigung der RO x Messungen am Vormittag konnte lediglich eine Verbesserung der erklärten Varianz um 0.5% erzielt werden. Um einen Hinweis auf den Einfluss anthropogener Emissionen zu bekommen, wurde der Wochengang von Ozon, RO x und NO x ebenfalls untersucht. Die Zunahme des Ozonmischungsverhältnisses am Wochenende bei gleichzeitigem Rückgang des Mischungsverhältnisses der Stickoxide wird damit erklärt, dass am Kleinen Feldberg eine VOClimitierte Situation vorgefunden wurde. Die Ozonbildungsrate auf Basis der Reaktion zwischen RO x und NO wurde für Tage mit einem Maximum der Globalstrahlung über 600 W m tdatensatz niedrig (r = 0,46). Die beobachtete Änderung des Ozonmischungsverhältnisses wurde mit dem berechneten mittleren Tagesgang der Ozonbildungsrate verglichen. Die Ozonbildungsrate lag um die Mittagszeit bei etwa 5 ppbv h Verlustprozesse zu erklären. Am Abend werden etwa 2 ppbv O 3 pro Stunde abgebaut. Im Rahmen einer Messkampagne im Juni/Juli 2000 am Meteorologischen Observatorium Hohenpeißenberg fanden Messungen der Konzentrationen von RO x , OH, einer Reihe von VOCs, und anderen relevanten Spurengasen statt. Die Messdaten werden mit Hilfe eines auf der Annahme des lokalen photostationären Gleichgewichts der Radikale basierenden Modells interpretiert. Die Modellergebnisse stimmten sehr gut mit den Messungen überein. Die Überschätzung der Konzentration an 2 Tagen wurde durch den Einfluss sauerstoffhaltiger VOCs erklärt. Das '' Recycling" der HO 2 Radikale (die Reaktion zwischen HO 2 und NO) ist die wichtigste Quelle für OH und die wichtigste Senke für RO x . Durch die erhöhte NOKonzentration am Vormittag wird HO 2 sehr schnell in OH umgewandelt, das wiederum für die VOCOxidation und RO x Bildung verantwortlich ist. Die wichtigste OHSenke und RO x Quelle ist die Oxidation von Isopren und den Terpenen. Um die Rolle der photochemischen Ozonbildung auf regionaler Skala zu untersuchen, wurden Ozonmessungen aus ganz Deutschland auf unterschiedlichen zeitlichen und räumlichen Skalen statistisch untersucht. Die Netto Änderungsrate der Ozonkonzentration war tagsüber an 3 nahe zusammenliegenden Stationen sehr ähnlich. Die OzonMessdaten von 277 deutschen Messstationen wurden mit den an einer Waldmessstelle nahe Königstein gemessenen Ozonwerten korreliert. Die Ozonmessungen in Königstein erklären 50% der Varianz der sommerlichen Ozonmessungen zwischen 11:00 und 16:00 MEZ an Stationen, die in einem Umkreis von etwa 250 km von Königstein liegen. Auf das ganze Jahr bezogen, liegt diese ''charakteristische Entfernung" bei etwa 350 km. Diese Ergebnisse deuten darauf hin, dass die Prozesse, die einen wichtigen Einfluss auf die Ozonkonzentration ausüben, auf regionalen Skalen von einigen hundert Kilometern aktiv sind. Zusammenfassend lässt sich sagen, dass die gemessenen RO x Konzentrationen mit den aufgrund der Oxidation der VOCs durch OH berechneten Konzentrationen konsistent sind. Obwohl die RO x Konzentationen für die chemische Modellierung von Bedeutung sind, tragen RO x Messungen nur wenig zu einer Verbesserung der Qualität von kurzfristigen statistischen Ozonprognosen bei. Keywords: Ozone, Troposphere, Peroxy Radicals, Free Radicals, Photochemistry, Chemical Amplifier
The Match method for the quantification of polar chemical ozone loss is investigated mainly with respect to the impact of the transport of air masses across the vortex edge. For the winter 2002/03, we show that significant transport across the vortex edge occurred and was simulated by the Chemical Lagrangian Model of the Stratosphere. In-situ observations of inert tracers and ozone from HAGAR on the Geophysica aircraft and balloon-borne sondes, and remote observations from MIPAS on the ENVISAT satellite were reproduced well by CLaMS. The model even reproduced a small vortex remnant that remained a distinct feature until June 2003 and was also observed in-situ by a balloon-borne whole air sampler. We use this CLaMS simulation to quantify the impact of transport across the vortex edge on ozone loss estimates from the Match method. We show that a time integration of the determined vortex average ozone loss rates, as performed in Match, results in a larger ozone loss than the polar vortex average ozone loss in CLaMS. The determination of the Match ozone loss rates is also influenced by the transport of air across the vortex edge. We use the model to investigate how the sampling of the ozone sondes on which Match is based represents the vortex average ozone loss rate. Both the time integration of ozone loss and the determination of ozone loss rates for Match are evaluated using the winter 2002/2003 CLaMS simulation. These impacts can explain the majority of the differences between CLaMS and Match column ozone loss. While the investigated effects somewhat reduce the apparent discrepancy in January ozone loss rates reported earlier, a distinct discrepancy between simulations and Match remains. However, its contribution to the accumulated ozone loss over the winter is not large.
The Match method for quantification of polar chemical ozone loss is investigated mainly with respect to the impact of mixing across the vortex edge onto this estimate. We show for the winter 2002/03 that significant mixing across the vortex edge occurred and was accurately modeled by the Chemical Lagrangian Model of the Stratosphere. Observations of inert tracers and ozone in-situ from HAGAR on the Geophysica aircraft and sondes and also remote from MIPAS on ENVISAT were reproduced well. The model even reproduced a small vortex remnant that was isolated until June 2003 and was observed in-situ by a balloon-borne whole air sampler. We use this CLaMS simulation to quantify the impact of cross vortex edge mixing on the results of the Match method. It is shown that a time integration of the determined vortex average ozone loss rates as performed in Match results in larger ozone loss than the polar vortex average ozone loss in CLaMS. Also, the determination of the Match ozone loss rates can be influenced by mixing. This is especially important below 430 K, where ozone outside the vortex is lower than inside and the vortex boundary is not a strong transport barrier. This effect and further sampling effects cause an offset between vortex average ozone loss rates derived from Match and deduced from CLaMS with an even sampling for the entire vortex. Both, the time-integration of ozone loss and the determination of ozone loss rates for Match are evaluated using the winter 2002/03 CLaMS simulation. These impacts can explain the differences between CLaMS and Match column ozone loss. While the investigated effects somewhat reduce the apparent discrepancy in January ozone loss rates, a discrepancy between simulations and Match remains. However, its contribution to the accumulated ozone loss over the winter is not large.
Constraining the architecture of complex 3D volcanic plumbing systems within active rifts, and their impact on rift processes, is critical for examining the interplay between faulting, magmatism and magmatic fluids in developing rift segments. The Natron basin of the East African Rift System provides an ideal location to study these processes, owing to its recent magmatic-tectonic activity and ongoing active carbonatite volcanism at Oldoinyo Lengai. Here, we report seismicity and fault plane solutions from a 10-month temporary seismic network spanning Oldoinyo Lengai, Naibor Soito volcanic field and Gelai volcano. We locate 6827 earthquakes with ML -0.85 to 3.6, which are related to previous and ongoing magmatic and volcanic activity in the region, as well as regional tectonic extension. We observe seismicity down to ~17 km depth north and south of Oldoinyo Lengai and shallow seismicity (3 - 10 km) beneath Gelai, including two swarms. The deepest seismicity (~down to 20 km) occurs above a previously imaged magma body below Naibor Soito. These seismicity patterns reveal a detailed image of a complex volcanic plumbing system, supporting potential lateral and vertical connections between shallow- and deep-seated magmas, where fluid and melt transport to the surface is facilitated by intrusion of dikes and sills. Focal mechanisms vary spatially. T-axis trends reveal dominantly WNW-ESE extension near Gelai, while strike-slip mechanisms and a radial trend in P-axes are observed in the vicinity of Oldoinyo Lengai. These data support local variations in the state of stress, resulting from a combination of volcanic edifice loading and magma-driven stress changes imposed on a regional extensional stress field. Our results indicate that the southern Natron basin is a segmented rift system, in which fluids preferentially percolate vertically and laterally in a region where strain transfers from a border fault to a developing magmatic rift segment.
The ICON single-column mode
(2021)
The single-column mode (SCM) of the ICON (ICOsahedral Nonhydrostatic) modeling framework is presented. The primary purpose of the ICON SCM is to use it as a tool for research, model evaluation and development. Thanks to the simplified geometry of the ICON SCM, various aspects of the ICON model, in particular the model physics, can be studied in a well-controlled environment. Additionally, the ICON SCM has a reduced computational cost and a low data storage demand. The ICON SCM can be utilized for idealized cases—several well-established cases are already included—or for semi-realistic cases based on analyses or model forecasts. As the case setup is defined by a single NetCDF file, new cases can be prepared easily by the modification of this file. We demonstrate the usage of the ICON SCM for different idealized cases such as shallow convection, stratocumulus clouds, and radiative transfer. Additionally, the ICON SCM is tested for a semi-realistic case together with an equivalent three-dimensional setup and the large eddy simulation mode of ICON. Such consistent comparisons across the hierarchy of ICON configurations are very helpful for model development. The ICON SCM will be implemented into the operational ICON model and will serve as an additional tool for advancing the development of the ICON model.
Owing to long-term similarities with regard to orbital climate forcing (i.e., low eccentricity and a dampened influence of precession), Marine Isotope Stage (MIS) 11 represents one of the closest astronomical analogues for present and future climate. Hence, insights into the climate variability of MIS 11 can contribute to a better understanding of the climatic evolution of the present (Holocene) interglacial as it would occur without human interference. In order to elucidate the natural climate variability during MIS 11, this study examines predominantly annually laminated lake sediments of Holsteinian age from Dethlingen, northern Germany. The Holsteinian interglacial is widely accepted to be the terrestrial equivalent of MIS 11c in central Europe and can be biostratigraphically correlated with the Hoxnian, Mazovian and Praclaux interglacials on the British Isles, in Poland and in France, respectively. These correlations yield the potential to cross-check the results from individual sites on a regional scale. This study is based on a multi-proxy approach including palynological, micropaleontological, sedimentological, geochemical and time series analyses within a wellconstrained chronological framework that has been established through varve counting and regional bio-stratigraphic correlations with other annually laminated archives of Holsteinian age. In particular, the here-presented study aims at (i) fingerprinting the long-term (centennial- to millennial-scale) and short-term (sub-decadal- to decadal-scale) climate variability during the Holsteinian interglacial, (ii) deciphering the nature, tempo and trigger mechanisms of abrupt climate change under interglacial boundary conditions, and (iii) assessing its impact on terrestrial ecosystems. With regard to long-term climate variability, the vegetation succession at Dethlingen as inferred from pollen data provides insights into the mesocratic to telocratic forest phases of a glacial-interglacial cycle spanning ~11500 (± 1000) years of the 15-16-ka-long Holsteinian interglacial. The development of temperate mixed forests suggests a general prevalence of mild climatic conditions during the Holsteinian. The older parts of the interglacial are characterised by the strong presence of boreal tree taxa (e.g., Picea), whereas the younger parts of the interglacial are marked by the expansion of sub-Atlantic to Atlantic forest elements (e.g., Abies, Buxus, Ilex, Quercus) and the decline of boreal tree taxa. This vegetation succession suggests a general warming trend and decreasing seasonality over the course of the Holsteinian interglacial. Based on the maximum pollen abundances of indicator tree taxa (e.g., Buxus and Quercus), peak warmth was reached during the later stages of the interglacial; it was accompanied by high humidity. The forest succession of the Holsteinian interglacial was punctuated by abrupt and gradual changes in the abundances of temperate plant taxa. These vegetation changes indicate considerable intra-interglacial climate variability. In particular, two marked declines of temperate taxa leading to the transient development of boreal and sub-boreal forests were triggered by centennial-scale climate oscillations, here termed Older and Younger Holsteinian Oscillations (OHO and YHO). These oscillations occurred ~6000 and ~9000 years after the onset of the interglacial pioneer forestation in central Europe, respectively. To assess the impact of abrupt climate change on terrestrial ecosystems during the Holsteinian and to investigate the underlying driving mechanisms, the intervals spanning the OHO and the YHO at Dethlingen were subjected to decadal-scale palynological and sedimentological analyses. Based on these data, the OHO comprises a 90-year-long decline of temperate taxa associated with expansion of Pinus and non-arboreal pollen, and a subsequent 130-year-long recovery of temperate taxa marked by the pioneer expansion of Betula and Alnus. Owing to its highly characteristic imprint on vegetation dynamics, the OHO can be identified in pollen records from the central European lowlands north of 50º latitude, from the British Isles to Poland. A close inspection of individual pollen records from that region reveals the prevalence of colder winters during the OHO, with a gradient of decreasing temperature and moisture availability, and increased continentality towards eastern Europe. This climate pattern points to a weakened influence of the westerlies and/or stronger influence of the Siberian High connected to the OHO. The vegetation dynamics during the YHO are characterised by a decline of temperate taxa (particularly of Carpinus) and the expansion of pioneer trees (mainly Betula). In contrast to the OHO, frost-sensitive taxa (e.g., Ilex, Buxus and Hedera) continued to thrive. This suggests that mean winter temperatures remained relatively high (>0 ºC) during the YHO pointing to a decrease of summer warmth related to the climatic deterioration. The YHO, which has a duration on the order of 300 years, is centered within a long-term (~1500-year) decline and subsequent, millennial-scale recovery of temperate taxa. Because the impact of the OHO and the YHO on the vegetation at Dethlingen was markedly different, both short-term climate oscillations may have been caused by different trigger mechanisms. For the OHO, the inferred regional-scale winter cooling over central Europe lasting for several decades points to a decrease in ocean heat transport, most likely related to a transient slowdown in North Atlantic Deep Water formation. This view is supported by the strong resemblance of the OHO to the 8.2 ka event of the Holocene with regard to the duration, imprint on terrestrial ecosystems, spatial pattern of the climatic impact, timing within the respective interglacial, and prevailing interglacial boundary conditions. In contrast, the presence of frost-sensitive taxa during the YHO appears to exclude a reduction in oceanic heat transport as postulated for the OHO. Instead, the long-lasting, gradual changes in the abundances of temperate taxa suggest a connection to orbital forcing, with the triggering mechanism causing the centennial-scale vegetation setback itself remaining unclear. The characteristics of short-term climate variability were investigated based on microfacies and time series analyses of a ~3200-year-long, annually laminated window of the Dethlingen record. The annual laminations at Dethlingen comprise biogenic varves consisting of two discrete sub-layers. The light layers, which are controlled by the intensity of diatoms blooms during spring/summer, reflect changes in the productivity of the Dethlingen palaeolake. In contrast, the dark layers, which consist predominantly of amorphous organic matter and fragmented diatom frustules, represent sediment deposition during autumn/winter. Spectral analyses of the thicknesses of the light and dark layers have revealed several peaks exceeding the 95% and 99% confidence levels that are near-identical to those known from modern instrumental data and Holocene records. Decadal-scale signals at periods of 90, 25, and 10.5 years are likely associated with the 88-, 22- and 11-year solar cycles; hence, solar activity appears to have been a forcing agent in productivity changes of the Dethlingen palaeolake. Sub-decadal-scale signals at periods between 3 and 5 years and ~6 years may reflect an influence of the El Niño-Southern Oscillation (ENSO) and the North Atlantic Oscillation (NAO) on varve formation during winter.
Emissions of sulphur hexafluoride (SF6), one of the strongest greenhouse gases on a per molecule basis, are targeted to be collectively reduced under the Kyoto Protocol. Because of its long atmospheric lifetime (estimated as 800 to 3200 years), the accumulation of SF6 in the atmosphere is a direct measure of its global emissions. Examination of our extended data set of globally distributed high-precision SF6 observations shows an increase in SF6 abundance from near zero in the 1970s to a global mean of 6.7 ppt by the end of 2008. In-depth evaluation of our long-term data records shows that the global source of SF6 decreased after 1995, most likely due to SF6 emission reductions in industrialised countries, but increased again after 1998. By subtracting those emissions reported by Annex I countries to the United Nations Framework Convention of Climatic Change (UNFCCC) from our observation-inferred SF6 source leaves a surprisingly large gap of more than 70–80% of non-reported SF6 emissions in the last decade. This suggests a strong under-estimation of emissions in Annex I countries and underlines the urgent need for independent atmospheric verification of greenhouse gases emissions accounting.
A new global crop water model was developed to compute blue (irrigation) water requirements and crop evapotranspiration from green (precipitation) water at a spatial resolution of 5 arc minutes by 5 arc minutes for 26 different crop classes. The model is based on soil water balances performed for each crop and each grid cell. For the first time a new global data set was applied consisting of monthly growing areas of irrigated crops and related cropping calendars. Crop water use was computed for irrigated land and the period 1998 – 2002. In this documentation report the data sets used as model input and methods used in the model calculations are described, followed by a presentation of the first results for blue and green water use at the global scale, for countries and specific crops. Additionally the simulated seasonal distribution of water use on irrigated land is presented. The computed model results are compared to census based statistical information on irrigation water use and to results of another crop water model developed at FAO.