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Institute
- Physik (3489) (remove)
Im Laufe dieser Bachelor-Arbeit wurden verschiedene GEM-Anordnungen systematisch auf ihr IBF-Verhalten hin untersucht. Neben der Reproduktion zuvor durchgeführter Messungen wurden auch neue GEM-Kombinationen getestet. Insbesondere lag der Fokus darauf, eine Verbesserung des IBFs gegenüber des Baseline-Setups zu erzielen. Dabei kamen neben der bisher verwendeten S und LP Folien auch SP Folien zum Einsatz. Die Messungen brachten jedoch kein Ergebnis hervor, welches als Verbesserung gegenüber der Ausgangslage angesehen werden könnte. Da mit SP GEMs zuvor wenig gearbeitet wurde, war es unter anderem ein Ziel, zu untersuchen, wie sich die Verwendung dieser GEMs auf den IBF auswirkt. Insbesondere war die Frage zu klären, ob durch ihre Verwendung der IBF des Baseline-Setups
verbessert werden kann. Zum besseren Verständnis wurde ebenfalls eine Variante, S-S-LPS, untersucht. Für dieses Setup konnte durch die Verwendung einer SP Folie auf Position 4 eine Verbesserung des IBF bewirkt werden, für das Baseline-Setup jedoch nicht. Ein wesentliches Ergebnis dieser Bachelor-Arbeit war, dass das Alignment der GEMs, entgegen bisheriger Annahmen, eine große praktische Relevanz hat. Die relative Orientierung zweier aufeinander folgender GEMs gleichen Lochabstands zueinander hat einen großen Ein
uss auf die lokale Ionentransmission. Eine genauere Untersuchung hat ergeben, dass man dem entgegenwirken kann, indem man aufeinander folgende GEMs um 90° gedreht einbaut. Aufgrund der Geometrie der Folien verhindert man dadurch, dass sich die Löcher zweier Folien direkt ßber- bzw. untereinander anordnen. Ein solcher Aufbau konnte durch eine geringfügige Modifikation der Testkammer erreicht werden.
Mit diesem veränderten Aufbau wäre es nun das Ziel gewesen, alle bisherigen Messungen zu wiederholen und auf Reproduzierbarkeit hin zu überprüfen. Die Wiederholung einer Messreihe mit um 90° gedrehten GEMs hat im Rahmen der Fehlertoleranzen reproduzierbare
Ergebnisse geliefert. Aus zeitlichen Gründen war es jedoch im Rahmen dieserArbeit nicht möglich, eine vollständige Wiederholung aller Messungen durchzuführen. Dies wurde zu einem späteren Zeitpunkt von anderen Personen getan.
In dieser Arbeit wurden im Rahmen des HADES-Experimentes von 2007 Proton-Proton-Stöße bei einer kinetischen Energie von Tkin = 3.5GeV der Reaktion pp → ppw simuliert. Insbesondere wurde mittels einer Pluto-Simulation untersucht, welche Auswirkungen die Berücksichtigung möglicher Verteilungsfunktionen für cos(θω) und cos(θ pp), die neben 2 weiteren Parametern als voneinander unabhängige Observablen zur Beschreibung der Reaktion gewählt wurden, auf die Anzahl der simulierten Ereignisse Nsim innerhalb der Detektorakzeptanz des HADES haben könnte. Hierbei stammt die gewählte Winkelverteilung für die w-Produktion aus Messungen des nicht mehr existierenden DISTO-Spektrometers, das Proton-Proton-Stöße bei einer leicht geringeren Energie von Tkin = 2.85GeV durchgeführt hatte, während die Verteilung für die Proton-Proton-Paar-Ausrichtung auf einer Annahme basiert und vorläufig gewählt wurde. Unter Verwendung eines weiteren Modells, das den 3-Teilchen-Zerfall ω → π+π−π0 beschreibt, wurde ein theoretisches Modell von Lutz et al. [1] in die Simulation implementiert, dessen Auswirkung auf Nsim es ebenfalls zu untersuchen galt. Dieses erlaubt eine Reduzierung der Anzahl der Freiheitsgrade des Systems von 12 auf 4, was eine Akzeptanzkorrektur der Reaktion pp→ ppω ermöglicht.
Die Ergebnisse zeigten eine starke Abhängigkeit der Anzahl der simulierten Teilchen von der Proton-Proton-Ausrichtung, die zu einer Reduzierung der Ereignisanzahl von etwa 15% führt. Dies hat zur Folge, dass eine Bestimmung der Verteilungsfunktion für diese Observable absolut notwendig ist. Die Auswirkungen der w-Winkelverteilung beträgt etwa 4−9%. Ein Vergleich der Simulationsergebnisse mit und ohne Modell führte zu dem Ergebnis, dass eine geringe Änderung der Nsim von 1−2% zu Gunsten des Zerfallsmodells vorliegt. Eine Berücksichtigung in Simulationen, die der Untersuchung des betrachteten Zerfalls dienen, ist also keine Notwendigkeit.
Bei der Ionenstrahltherapie bestimmt die Energie der Ionen die Eindringtiefe in das Gewebe und damit die Lage des Braggpeaks, in dem der größte Teil der Ionisationsenergie deponiert wird.
Um die gewünschte Dosis möglichst genau im Tumor zu lokalisieren, müssen in den aufeinanderfolgenden Extraktionen die gewünschten unterschiedlichen Energien möglichst genau sein.
In der Beschleunigungsphase werden die Magnetfelder der Magnete im Synchrotron bis zum vorgegebenen Exktraktionswert hochgefahren. Dieser bestimmt zusammen mit der Synchrotronfrequenz die Strahlenergie. Während und insbesondere am Ende dieser Phase, Rampe genannt, sollte das Magnetfeld daher sehr genau dem berechneten Sollwert folgen, um Strahlverluste zu minimieren und die geforderte Strahlqualität zu erreichen.
In der zeitlichen Steuerung der Magnetströme müssen magnetische Effekte, die hauptsächlich im Eisen der Magnete auftreten, wie Wirbelströme und die Hysterese berücksichtigt werden, da sie das Feld verfälschen und damit den Strahl in unerwünschter Weise beeinflussen. Die während der Rampe entstehenden Wirbelströme stören das Magnetfeld, so dass bisher vor der Extraktion des Strahls eine Wartezeit eingeführt wurde, bis die Wirbelströme abgeklungen waren.
Bei beliebig wählbaren Abfolgen der vordefinierten Zyklen kommt es durch die Hysterese des Eisens zu unterschiedlichen Remanenzfeldern, die das Magnetfeld verändern. Um dem vorzubeugen, durchliefen die Magnete eine vordefinierte Hystereseschleife. Ist die geforderte Energie des Strahls erreicht, wird das Magnetfeld konstant gehalten und die Teilchen aus dem Synchrotron extrahiert. Der Rest der Hystereseschleife wurde am Ende des Zyklus durchlaufen.
Die im Rahmen dieser Dissertation entwickelte dynamische Magnetfeldregelung misst das integrale Magnetfeld sehr genau und korrigiert die Feldfehler. Das integrale Magnetfeld folgt damit jederzeit seiner Vorgabe, unabhängig von den dynamischen Störeffekten. Die Wirbelströme und die Hysterese sind zwar immer noch vorhanden, die dadurch verursachten Feldfehler können aber durch eine Rückkopplung auf den Strom des Magneten korrigiert werden.
Es werden verschiedene Verfahren zur Messung der Magnetfelder untersucht. Am besten eignet sich für die dynamische Magnetfeldregelung die Kombination aus einer Hallsonden- und einer Induktionsspulenmessung. Die Messung muss das integrale Magnetfeld des Magneten BL, also das gesamte Feld entlang des Strahlwegs, bestimmen. Die Induktionsspule, oder Pickupspule, liegt deshalb entlang des Strahlrohrs im Magneten und liefert eine Spannung in Abhängigkeit von der Änderung des magnetischen Flusses. Durch die Integration dieser Spannung erhält man das integrale Feld des Magneten. Die Messung wird mit einer Hallsondenmessung zu Beginn des Beschleunigerzyklus auf einen absoluten Messwert geeicht.
Der Hauptteil dieser Arbeit beschäftigt sich mit der Entwicklung des sogenannten HIT Integrators, der die Integration der Pickupspulenspannung übernimmt. Bisher verfügbare Integratoren konnten die notwendigen Anforderungen an Genauigkeit, Echtzeitfähigkeit, automatische Kalibrierung, ständige Messbereitschaft, Temperaturunabhängigkeit und hohe Verfügbarkeit nicht erfüllen. Der neu entwickelte HIT Integrator wurde diesen Anforderungen entsprechend entwickelt. Der Integrator mit dem neuartigen Konzept der gleichzeitigen Messung und Kalibrierung in Echtzeit ist als Patent angemeldet worden. Neben der Entwicklung und Verwirklichung des Gesamtkonzepts war die numerische Integration des stark verrauschten Pickupspulensignals und die sofortige Umsetzung des integralen Werts in ein Steuersignal für die Dipolmagnetstromgeräte eine besondere technische Herausforderung.
Die elektronischen Schaltungen für die dynamische Magnetfeldregelung sind in der Baugruppe des HIT Integrators zusammengefasst. Die Ansteuerung der Hallsonde mit einer temperaturkompensierten Stromquelle, der Signalaufbereitung und Analog-Digital-Wandlung, sowie der Integrator und der Regler bilden eine technische Einheit.
Der HIT Integrator ist speziell für den Einsatz im bestehenden Beschleunigerkontrollsystem und den Magnetnetzgeräten entwickelt worden.
Die Regler der Magnetnetzgeräte wurden so verändert, dass sie einen Zusatzsollwert verarbeiten können, der auf den berechneten Sollwert der Datenversorgung addiert wird.
Die Magnetfeldregelung wurde in den Therapiebeschleuniger integriert, dazu wurde die Datenversorgung und das Kontrollsystem angepasst. Die Magnetfeldregelung stellt ein neues Gerät im Beschleuniger dar, das in die Netzgeräte der Synchrotronmagnete eingebaut worden ist. Die Datenversorgung dieser Geräte beinhaltet u.a. eine neue Methode der Kalibrierung.
Es konnte durch Messungen gezeigt werden, dass die Magnetfeldregelung mit hoher Genauigkeit funktioniert. Es wird eine Genauigkeit von besser als 10^{-4} des maximalen Feldes von 1.5 T erreicht, also weniger als 150uT, der dreifachen Stärke des Erdmagnetfelds. Vor allem die Bestrahlungszeit mit Protonen und die Bestrahlung bei niedrigen Energien profitiert von der Magnetfeldregelung, da hier das Extraktionsniveau der Magnete relativ gering ist und das Durchlaufen der vordefinierten Hystereseschleife prozentual mehr Zeit im Zyklus in Anspruch nimmt. Durch den Wegfall dieser Phase wird daher pro Zyklus mehr Zeit eingespart. Die Messungen zeigen, dass im Beschleunigerzyklus trotz der fehlenden Wartezeiten, die bis zu 24% betragen, eine gleichbleibend gute Strahlqualität erreicht wird. Dies wurde mit Vergleichsmessungen gezeigt, bei denen der Strahl mit und ohne Feldregelung vermessen wurde. Untersucht wurde eine große Stichprobenmenge aus dem Parameterraum, gegeben durch zwei Ionensorten mit jeweils 255 Strahlenergien, 10 verschiedenen Teilchenraten und 4 Strahlbreiten. Außerdem wurde die Energie des Strahls nachgemessen.
Für die Einführung in den Therapiebetrieb musste eine Impactanalyse gemacht werden, die mögliche Auswirkungen des neuen Verfahrens behandelt. Das Risiko für Patienten, Mitarbeiter und Dritte darf durch die Magnetfeldregelung nicht erhöht werden. Daraus entstand auch die Forderung nach einem redundanten System, das Fehler erkennt und die Bestrahlung abbricht.
Die mittlere Leistungsaufnahme des Beschleunigers des Heidelberger Ionenstrahltherapiezentrums liegt bei etwa 1 MW, bei einem Jahresenergieverbrauch von 8 GWh mit Kosten von etwa 1 Million Euro. Dies entspricht einer deutschen Kleinstadt mit 10000 Einwohnern. Die Verkürzung der Zykluszeiten wirkt sich direkt auf die Bestrahlungszeit und auf die Energiekosten aus. Würde man die Anlage durch die Zeiteinsparungen kürzer betreiben, würde man etwa 2 GWh pro Jahr sparen, was die Stromkosten um etwa 250000 Euro reduziert.
Zusätzlich zu den eingesparten Kosten wird auch die Bestrahlungszeit kürzer und damit auch die Zeit, die der Patient bei der Behandlung fixiert wird. Die Behandlung für die Patienten wird angenehmer. Man kann aber auch durch die eingesparte Bestrahlungszeit pro Patient entsprechend mehr Patienten behandeln. Das heißt man kann an Stelle von 700 Patienten im Jahr 910 Patienten mit einem Tumor behandeln. Dieser für die Patienten willkommene Effekt bedeutet auf der anderen Seite für HIT aber auch Mehreinnahmen von 4.2 Millionen Euro im Jahr.
Das Konzept der Magnetfeldregelung kann auch an anderen Beschleunigeranlagen zum Einsatz kommen. Dazu müssen die Magnete mit den Sonden bestückt werden und die Magnetnetzgeräte einen Eingang für einen Zusatzsollwert bekommen. Das Beschleunigerkontrollsystem kann erweitert werden, damit es einen Sollwert mit allen notwendigen Kalibrierungen berechnen kann. Der HIT Integrator wird dann als eigenständiges Gerät in das Kontrollsystem eingebunden.
The planned Facility for Antiproton and Ion Research (FAIR) at GSI has to cope with a wide range of beam intensities in its high-energy beam transport systems and in the storage rings. To meet the requirements of a non-intercepting intensity measurement down to nA range, it is planned to install a number of Cryogenic Current Comparator (CCC) units at different locations in the FAIR beamlines. In this work, the first CCC system for intensity measurement of heavy ion beams, which was developed at GSI, was re-commissioned and upgraded to be used as a 'GSI - CCC prototype' for extensive optimization and development of an improved CCC for FAIR. After installation of a new SQUID sensor and related electronics, as well as implementation of improved data acquisition components, successful beam current measurements were performed at a SIS18 extraction line. The measured intensity values were compared with those of a Secondary Electron Monitor (SEM). Furthermore, the spill-structure of a slowly extracted beam was measured and analyzed, investigating its improvement due to bunching during the slow-extraction process. Due to the extreme sensitivity of the superconducting sensor, the determined intensity values as well as the adjustment of the system for optimal performance are strongly influenced by the numerous noise sources of the accelerators environment. For this reason, detailed studies of different effects caused by noise have been carried out, which are presented together with proposals to reduce them. Similarly, studies were performed to increase the dynamic range and overcome slew rate limitations, the results of which are illustrated and discussed as well. By combining the various optimizations and characterizations of the GSI CCC prototype with the experiences made during beam operation, criteria for a more efficient CCC System could be worked out, which are presented in this work. The details of this new design are worked out with respect to the corresponding boundary conditions at FAIR. Larger beam tube diameters, higher radiation resistivity and UHV requirements are of particular importance for the cryostat. At the same time these parameters affect the CCC superconducting magnetic shielding, which again has significant influence on the current resolution of the system. In order to investigate the influence of the geometry of the superconducting magnetic shield on different magnetic field components and to optimize the attenuation, FEM simulations have been performed. Based on the results of these calculations, modifications of the shield geometry for optimum damping behavior are proposed and discussed in the thesis.
We have studied one-proton-removal reactions of about 500MeV/u 17Ne beams on a carbon target at the R3B/LAND setup at GSI by detecting beam-like 15O-p and determining their relative-energy distribution. We exclusively selected the removal of a 17Ne halo proton, and the Glauber-model analysis of the 16F momentum distribution resulted in an s2 contribution in the 17Ne ground state of about 40%.
Magnetism is a beautiful example of a macroscopic quantum phenomenon. While known at least since the ancient Greeks, a microscopic theoretical explanation of magnetism could only be achieved with the advent of quantum mechanics at the beginning of the 20th century. Then it was understood that in a certain class of solids the famous Pauli exclusion principle leads to an effective interaction between the microscopic magnetic moments, i.e., the spins, which favors an ordered, and hence macroscopically magnetic, state. Nowadays, magnetic phenomena are used in a host of applications, and are especially relevant for information storage and processing technologies.
Despite the long history of the field, magnetic phenomena are still an active research topic. In particular, in the last decade the fields of spintronics and spin-caloritronics emerged, which manipulate the microscopic spins via charge and heat currents respectively. This opens new avenues to potential applications; including the possibility to use the magnetic spin degrees of freedom instead of charges as carriers of information, which could provide a number of advantages such as reduced losses and further miniaturization.
In this thesis we do not delve any further into the realm of possible applications. Instead we use sophisticated theories to explore the microscopic spin dynamics which is the basis of all such applications. We also focus on a particular compound: Yttrium-iron garnet (YIG), which is a ferrimagnetic insulator. This material has been widely used in experiments on magnetism over the last decades, and is a popular candidate for spintronic devices. Microscopically, the low-energy magnetic properties of YIG can be described by a ferromagnetic Heisenberg model. For spintronics and spin-caloritronics applications, it is however insufficient to only consider the magnetic degrees of freedom; one should also include the coupling of the spins to the elastic lattice vibrations, i.e., the phonons. Besides giving an overview on techniques used throughout the thesis, the introductory Ch. 1 provides a discussion of the microscopic Hamiltonian used to model the coupled spin-phonon system in the subsequent chapters.
The topic of Ch. 2 are the consequences of the magnetoelastic coupling on the low-energy magnon excitations in YIG. Starting from the microscopic spin-phonon Hamiltonian, we rigorously derive the magnon-phonon hybridization and scattering vertices in a controlled spin wave expansion. For the experimentally relevant case of thin YIG films at room temperature, these vertices are then used to compute the magnetoelastic modes as well as the magnon damping. In the course of this work, the damping of magnons in this system was also investigated experimentally using Brillouin light scattering spectroscopy. While comparison to the experimental data shows that the magnetoelastic interactions do not dominate the total magnon relaxation in the experimentally accessible regime, we are able to show that the spin-lattice relaxation time is strongly momentum dependent, thereby providing a microscopic explanation of a recent experiment.
In the final Ch. 3, we investigate a different phenomenon occurring in thin YIG films: Room temperature condensation of magnons. Prior work attributed this condensation process to quantum mechanics, i.e., it was interpreted as Bose-Einstein condensation. However, this is not satisfactory because at room temperature, the magnons in YIG behave as purely classical waves. In particular, the quantum Bose-Einstein distribution reduces to the classical Rayleigh-Jeans distribution in this case. In addition, the effective spin in YIG is very large. Therefore we start from the hypothesis that the room temperature magnon condensation is actually a new example of the kinetic condensation of classical waves, which has so far only been observed by imaging classical light in a photorefractive crystal. To distinguish this classical condensation from the quantum mechanical Bose-Einstein one, we refer to it as Rayleigh-Jeans condensation. To prove our claim, we consider the classical equations of motion of the coupled spin-phonon system. By eliminating the phonon degrees of freedom, we microscopically derive a non-Markovian stochastic Landau-Lifshitz-Gilbert equation (LLG) for the classical spin vectors. We then use this LLG to perform numerical simulations of the magnon dynamics, with all parameters fixed by experiments. These simulations accurately reproduce all stages of the magnon time evolution observed in experiments, including the appearance of the magnon condensate at the bottom of the magnon spectrum. In this way we confirm our initial hypothesis that the magnon condensation is a classical Rayleigh-Jeans condensation, which is unrelated to quantum mechanics.