Refine
Year of publication
Document Type
- Article (2189)
- Preprint (1513)
- Doctoral Thesis (600)
- Conference Proceeding (249)
- diplomthesis (100)
- Bachelor Thesis (75)
- Master's Thesis (61)
- Contribution to a Periodical (46)
- Diploma Thesis (34)
- Book (33)
Is part of the Bibliography
- no (4995) (remove)
Keywords
- Kollisionen schwerer Ionen (47)
- heavy ion collisions (44)
- LHC (27)
- Quark-Gluon-Plasma (25)
- Heavy Ion Experiments (21)
- BESIII (20)
- e +-e − Experiments (19)
- equation of state (19)
- quark-gluon plasma (19)
- QCD (18)
Institute
- Physik (4995) (remove)
In this paper we derive a formula for the energy loss due to elastic N to N particle scattering in models with extra dimensions that are compactified on a radius R. In contrast to a previous derivation we also calculate additional terms that are suppressed by factors of frequency over compactification radius. In the limit of a large compactification radius R those terms vanish and the standard result for the non compactified case is recovered.
The pion source as seen through HBT correlations at RHIC energies is investigated within the UrQMD approach. We find that the calculated transverse momentum, centrality, and system size dependence of the Pratt-HBT radii R_L and R_S are reasonably well in line with experimental data. The predicted R_O values in central heavy ion collisions are larger as compared to experimental data. The corresponding quantity sqrt R_O^2-R_S^2 of the pion emission source is somewhat larger than experimental estimates.
Gravitational radiation from ultra high energy cosmic rays in models with large extra dimensions
(2006)
The effects of classical gravitational radiation in models with large extra dimensions are investigated for ultra high energy cosmic rays (CRs). The cross sections are implemented into a simulation package (SENECA) for high energy hadron induced CR air showers. We predict that gravitational radiation from quasi-elastic scattering could be observed at incident CR energies above 10^9 GeV for a setting with more than two extra dimensions. It is further shown that this gravitational energy loss can alter the energy reconstruction for CR energies E_CR > 5 10^9 GeV.
No black holes at IceCube
(2006)
This work is dedicated to the investigation of nuclear matter at non-zero temperatures within an effective hadronic model based on the Walecka model. It includes fermions as well as a vector omega meson and a scalar sigma meson where for the latter a quartic self-interaction has been considered. The coupling constants have been adapted to the saturation properties of infinite nuclear matter. A set of self-consistent Schwinger-Dyson equations has been set up for all included particles within the Cornwall-Jackiw-Tomboulis formalism. This has been expanded to non-zero temperatures via the imaginary time formalism. Beside tree-level two different stages of approximations have been considered: the Hartree approximation which takes into account the double-bubble diagram for the scalar meson, and an improved approximation where in addition two-particle irreducible sunset diagrams for all fields were included. In the Hartree-approximation the Schwinger-Dyson equations can be solved by quasi-particle ansaetze, while in the improved approximation spectral functions with non-zero widths have to be introduced. The Schwinger-Dyson equations are solved by the fully dressed propagators. Comparing the two levels of approximation shows the influence of finite widths on the temperature dependence of the particle properties. The consideration of finite widths in fact has a significant influence on the transition from a phase of heavy nucleons to a transition of light nucleons, observed in the Walecka-model. The temperature dependence is weakend when finte widths are taken into account.
Das HADES-Experiment (High Acceptance DiElectron Spectrometer) am SIS der GSI wurde zur Messung der e+e- - Paare dileptonischer Zerfälle der leichten Vektormesonen im Energiebereich von 1 - 2 AGeV entwickelt. Im Rahmen dieser Arbeit wurden die Eigenschaften des Spurverfolgungssystems de HADES-Spektrometers untersucht. Das Spurverfolgungssystem besteht aus vier Ebenen mit Vieldrahtdriftkammern (Mini Drift Chambers (MDCs)) niedriger Massenbelegung (low-mass), die aus je 6 Auslesedrahtebenen bestehen. Eine der Hauptanforderungen an das Spurverfolgungssystem ist eine Ortsauflösung von 100 µm (hauptsächlich in y-Richtung), die benötigt wird, um die geforderte Massenauflösung von 1 % im Bereich der w-Masse zu erzielen. Gleichzeitig muss die Nachweiseffizienz für schwach ionisierende Elektronen/Positronen hoch sein. Die primäre Messgröße von Driftkammern ist die Driftzeit der entlang einer Teilchenspur generierten Elektronen der Primärionisation zum Auslesedraht. Um die gemessene Driftzeit in eine Ortskoordinate umrechnen zu können, ist eine genaue Kenntnis der Ort-Zeit-Korrelation der Driftzellen nötig. Es wurden detaillierte Simulationen der He/i - Butan Zählgasmischung mit GARFIELD, MAGBOLTZ und HEED vorgenommen. Dabei wurden Gastemperatur, Gasdruck, sowie die Kontamination des Zählgases mit O2 und H20 und die Konzentration des Löschgases variiert und die Auswirkung auf die Driftgeschwindigkeit der Elektronen und damit auf Ort-Zeit-Korrelation der Driftzellen studiert Des Weiteren wurden die Auswirkung der Höhe der Diskriminatorschwelle der Ausleseelektronik und der Einfluss des magnetischen Feldes auf die Driftzeitmessung untersucht. Ein zweidimensionales Modell der Driftzellen, das die Abhängigkeit der Ort-Zeit-Korrelation vom Einfallswinkel des Teilchens in die Driftzelle berücksichtigt, wurde in die Spurrekonstruktionssoftware integriert. Das realistische Ansprechverhalten der Driftkammern wurde in die GEANT-Simulation des HADES-Experimentes implementiert. In der vorliegenden Arbeit wird das Ansprechverhalten der inneren Driftkammern anhand von C + C Daten analysiert, die bei einer Einschussenergie von 2 AGeV im November 2001 gemessen wurden. Es wurde eine neue Methode entwickelt, die aus der Breite des am Auslesedraht influenzierten Signals (time above threshold) eine dem Energieverlust eines Teilchens korrelierte Größe bestimmt, die sich zur Identifikation von Teilchen eignet. Die vorgestellte Methode der Energieverlustmessung besitzt eine Auflösung von etwa 10 % für minimal ionisierende Teilchen und etwa 7, 2 % für stark ionisierenden Teilchen. Die Ortsauflösung der Driftzellen betrug 128 - 154 µm für minimal ionisierende Teilchen und 84 - 116µm für stark ionisierende Teilchen. Für minimal ionisierende Teilchen wurde die Ortsauflösung der Driftkammern in x- und y-Richtung zu x = 181 - 195µm und y = 87 - 104 µm bestimmt. Für stark ionisierende Teilchen wird eine Ortsauflösung von x = 119 - 148 µm und y = 57 - 79 µm erreicht. Eine Teilchenspur wird redundant in den 6 Drahtebenen einer Driftkammer nachgewiesen. Die Nachweiseffizienz der Drahtebenen einer Driftkammer lag für minimal ionisierende Teilchen bei 90 - 96 % und für stark ionisierende Teilchen bei 94 - 98 %. Es konnte somit gezeigt werden, dass die Driftkammern des HADES-Experiment über die geforderte Ortsauflösung und Nachweiseffizienz für e+|e- verfügen und aufgrund der Messung des Energieverlustes in den Driftkammern zur Teilchenidentifikation und Reduktion des Untergrundes beitragen können.
We introduce a smooth mapping of some discrete space-time symmetries into quasi-continuous ones. Such transformations are related with q-deformations of the dilations of the Euclidean space and with the non-commutative space. We work out two examples of Hamiltonian invariance under such symmetries. The Schrodinger equation for a free particle is investigated in such a non-commutative plane and a connection with anyonic statistics is found. PACS: 03.65.Fd, 11.30.Er
Results from various theoretical approaches and ideas presented at this exciting meeting (summary talk at the 5th International Conference on Physics and Astrophysics of Quark Gluon Plasma (ICPAQGP - 2005)) are reviewed. I also point towards future directions, in particular hydrodynamic behaviour induced by jets traveling through the quark-gluon plasma, which might be worth looking at in more detail.
Im Rahmen der vorliegenden Arbeit wurde ein Spracherkennungssystem realisiert, das sowohl phonembasierte als auch wortbasierte Modelle zur sprecherunabhängigen Schlüsselworterkennung im Kontext fließender Sprache verwenden kann. Das System erlaubt dabei die Wahl zwischen zwei grundlegend verschiedenen Verfahren: Entweder kann die Bewertung von Äußerungen durch Schlüsselwortmodelle mit gewählten Schwellenwerten verglichen werden, wobei eine Schwellenwertüberschreitung die Erkennung eines Schlüsselwortes signalisiert, oder es werden beliebige Phonemfolgen als Füllmodelle verwendet, die mit den Schlüsselwortmodellen konkurrieren. Der Schlüsselworterkenner kann sowohl zur 1-Schlüsselwort- Erkennung, bei der vorausgesetzt wird, dass sich in jeder Äußerung exakt ein Schlüsselwort befindet, als auch zur n-Schlüsselwort-Erkennung verwendet werden, bei der sich eine beliebige Anzahl Schlüsselwörter in jeder Äußerung befinden kann. Durch eine effiziente Implementation wurde die Fähigkeit zur Echtzeitverarbeitung auf verfügbaren Arbeitsplatzrechnern erreicht.....
Der Ursprung der Masse bekannter Teilchen und der Einschlu der Quarks in Hadronen ist einer der grundlegendsten Fragestellungen der modernen Physik. Die Kenntnis des Verhaltens von Kernmaterie unter extremen Bedingungen ist unabdingbar zum Verstandnis der Evolution des Universums und zur Theoriebildung von stellaren Objekten wie Neutronensternen und schwarzen Löchern. Einen experimentellen Zugang zur Untersuchung dieser Problematik stellt die Erzeugung heier und dichter Kernmaterie in ultrarelativistischen Schwerionenkollisionen dar. Hierzu untersucht das NA49 Experiment seit Herbst 1994 am 208-Pb-Strahl des CERN-SPS Pb+Pb Kollisionen bei 158 GeV pro Nukleon. Ein Schwerpunkt des Forschungsprogrammes liegt in der Untersuchung des Zustandes der Materie in der frühen Phase der Reaktion. Nach gegenwartem Stand der Theorie wird bei genugent hoher Energiedichte der Einschlu der Quarks in Hadronen aufgebrochen und ein Zustand der Materie erzeugt, in welchen die eektiven Freiheitsgrade von Hadronen und Hadronen-Resonanzen in die von Quarks und Gluonen übergehen - das sogenannte Quark-Gluon-Plasma (QGP). Die Honung ist nun, da sich die Formation eines solchen QGP im hadronischen Endzustand wiederspiegelt. Es wird erwartet, da die Seltsamkeitsproduktion in einem QGP sich in ihrer Rate und ihren Gleichgewichtswerten von der in einem hadronischen Feuerball-Szenario unterscheidet und sich somit als Signatur fur die Erzeugung eines GQP eignet. Von besonderen Interesse ist hier die Produktion von Hyperonen. Schwerpunkt dieser Arbeit ist die Untersuchung der Produktion von doppelt seltsamen geladenen -Hyperonen in zentralen Pb+Pb Kollisionen. Zu diesem Zweck wurden 58000 zentrale Pb+Pb Ereignisse der im Herbst 1995 aufgezeichneten Reaktionen untersucht. Die Analyse der Daten wurde auschlielich mit der zweiten Spurendriftkammer (VTPC2) durchgeführt. Zur Rekonstruktion der -Hyperonen muten Verfahren entwickelt werden, um die typischen Zerfalls-Topologien der doppelt seltsamen Hyperonen aus der Vielzahl von ca. 700 in der Vertex-TPC gemessenen geladenen Teilchenspuren herauszulösen. Aus den in der kombinatorischen Analyse rekonstruierten 720 und 138 + - Hyperonen konnten Spektren des Transversalimpulses und Rapiditatsverteilungen ermittelt werden. Die gewonnene Phasenraum-Akzeptanz fur die in der VTPC2 gemessenen und + - Hyperonen beträgt ....
Jet physics in ALICE
(2005)
This work aims at the performance of the ALICE detector for the measurement of high-energy jets at mid-pseudo-rapidity in ultra-relativistic nucleus-nucleus collisions at LHC and their potential for the characterization of the partonic matter created in these collisions. In our approach, jets at high energy with E_{T}>50 GeV are reconstructed with a cone jet finder, as typically done for jet measurements in hadronic collisions. Within the ALICE framework we study its capabilities of measuring high-energy jets and quantify obtainable rates and the quality of reconstruction, both, in proton-proton and in lead-lead collisions at LHC conditions. In particular, we address whether modification of the jet fragmentation in the charged-particle sector can be detected within the high particle-multiplicity environment of the central lead-lead collisions. We comparatively treat these topics in view of an EMCAL proposed to complete the central ALICE tracking detectors. The main activities concerning the thesis are the following: a) Determination of the potential for exclusive jet measurements in ALICE. b) Determination of jet rates that can be acquired with the ALICE setup. c) Development of a parton-energy loss model. d) Simulation and study of the energy-loss effect on jet properties.
Im Rahmen dieser Arbeit wurde der Aufbruchsmechanismus des Projektilspektators im relativistischen Energiebereich untersucht. Es zeigte sich dabei, daß die in vorherigen Experimenten beobachtete Targetunabhängigkeit der Fragmentproduktion bei 600 AMeV sich als universelle Eigenschaft des Zerfalls von angeregter und expandierter Kernmaterie erweist. Die Untersuchung von Ladungskorrelationen zeigte ebenfalls weder eine Energie- noch Projektilabhängigkeit im Rahmen der experimentellen Auflösung. Diese Ergebnisse sind im wesentlichen auch zu höheren und niedrigeren Energien von anderen Experimenten bestätigt worden. Mit diesem experimentellen Befund kann eindeutig der Beweis für die Existenz einer Multi-Fragmentproduktion bei relativistischen Energien gegeben werden. Im Rahmen von Modellen können die beobachteten Ladungsobservablen mit einem statistisch dominierten Zerfall erklärt werden. Die sich daran anschließende Frage nach dem Aufbruchsmechanismus und dessen Eigenschaften wurde weiterführend mit Ausrichtung auf kinematische und thermodynamische Eigenschaften des Systems untersucht. Dabei ergab sich, daß die kinematischen Observablen der Projektilquelle einen thermisch äquilibrierten Zustand widerspiegeln, unabhängig vom Stoßparameter und der Einschußenergie. Die hierbei beobachtete Emission von leichten Teilchen, die nicht eindeutig einer intermediären oder Projektilquelle zugeordnet werden konnten, ist hierbei Hinweis auf Nicht-Gleichgewichtsanteile, die in der frühen Phase der Reaktion gebildet werden. Mit der Untersuchung von kollektiven Eigenschaften des zerfallenden Systems wurde versucht, einen quantitativen Einblick in die Reaktionskinematik und den damit zusammenhängenden Energietransfer in den Projektilspektator zu erhalten. Diese Analysen ergaben, daß es bei gleichem Stoßparameter eine starke Abhängigkeit des "Bounce Off" von der Targetmasse gibt, während zu höheren Energien, beim gleichen System, nur ein kleiner Effekt zu höheren Impulsüberträgen (5-10 MeV/c) beobachtet wird. Die Energiebilanz des Systems und die hieraus extrahierten Anregungsenergien zeigten zum ersten Mal in experimentellen Daten ohne Zuhilfenahme von theoretischen Modellen, daß für die stark asymmetrischen Systeme nicht der gleiche Zusammenhang zwischen Anregungsenergie und Z bounce; erhalten wird wie bei den symmetrischen Systemen. Dies zeigt sich bei den asymmetrischen Systemen durch eine Saturation der Anregungsenergie mit kleiner werdendem Z bounce, im Gegensatz zu den symmetrischen Systemen, die einen weiteren Anstieg zeigen. Die absoluten Werte der maximalen Anregungsenergie von <E0/A0> ~ 21-23 MeV bei halbzentralen Reaktionen von 197 Au + 197 Au bei 800 AMeV und <E0/A0> ~27 MeV bei 238 U + 238 U 1000 AMeV sind verschieden bei gleichem Z bound. Es stellt sich jedoch heraus, daß mit Ausnahme der stark asymmetrischen Systeme die Anregungsenergie pro herausgeschlagenem Nukleon (<E Knock/A>) in Abhängigkeit von der prozentualen Größe des Prefragments zu peripheren Reaktionen monoton und energieunabhängig steigt.Werden die experimentell bestimmten Anregungsenergien verglichen mit denen aus theoretischen Modellen, so sind diese immer deutlich geringer. Im statistischen Modell von Botvina und Mitarbeitern, das von D´esesquelles mit unseren Daten verglichen wurde [D´ese 96] [D´ese 95], ergaben sich maximale Anregungsenergien von <E0/A0> ~ 7-8 MeV in zentralen Reaktionen. Ein Vergleich mit QMD + SMM ergibt, daß für die asymmetrischen Systeme (197AU + 12C)mit einer Anregungsenergien von maximal <E0/A0> ~ 8-9 MeV eine Beschreibung der Daten möglich ist. Für die symmetrischen Systeme zeigt sich eine zunehmende Diskrepanz mit zunehmender Targetmasse zwischen den experimentellen und theoretischen Anregungsenergien. Die Ladungsobservablen der Daten werden von der verwendeten QMD + SMM-Rechnung und der QMD (SACA)-Rechnung gut wiedergegeben. Durch Anpassung von Rechnungen mit dem Quantenstatischen Modell [Hahn 88b] (QSM) an die experimentellen Daten ergaben sich Aufbruchsdichten bei zentralen Reaktionen von rho/rho 0 ~ 0.3 bis 0.4, diese sind konsistent mit dem Aufbruch eines äquilibrierten und expandierten Systems. Die aus QSM erhaltenen Temperaturen des Quellsystems in Abhängigkeit von der Anregungsenergie geben im wesentlichen den von Pochodzalla und Mitarbeitern beobachteten Verlauf der kalorischen Kurve wieder. Die Frage, ob dieser Verlauf einen Phasenübergang von flüssig zu gasförmig darstellt, ist anhand dieser Methode nicht zu entscheiden. Die Ergebnisse der Ladungsobservablen in Verbindung mit den kollektiven Eigenschaften zeigen, daß die Anregungsenergie, die zum Erreichen des Maximums der M Fragmentproduktion ( <M IMF> ~ 4.4) nötig ist <E0/A0> ~ 11 MeV, einen geringeren absoluten Wert hat als der Bereich des möglichen Phasenübergangs <E0/A0> ~17 MeV. Im Gegensatz dazu stellt sich das Maximum der mittleren IMF -Produktion energie-, target- und projektilunabhängig bei <E0/A0> ~11 MeV ein. Mit diesemVergleich wird deutlich, daß zur näheren Untersuchung des Phasenübergangs von Kernmaterie nicht die in der Anregungsenergie saturierenden asymmetrischen Projektil-Target Kombinationen benutzt werden können. Die physikalische Fragestellung einer neuen Generation von Experimenten mit dem ALADIN-Detektor müßte in der Quantifizierung des Phasenübergangs und seiner dynamischen Observablen liegen. Dabei ist Beantwortung der Frage nach der zeitlichen Entwicklung der Fragmentproduktion über Korrelationen der Fragmente im Bereich des Phasenübergangs im Vergleich zum Maximum der universellen Kurve sowie die ereignisweise Bestimmung von dynamischen Observablen anzustreben.
In the present work, the Heidelberg electron beam ion trap (EBIT) at the Max-Planck-Institute für Kernphysik (MPIK) has been used to produce, trap highly charged argon ions and study their magnetic dipole (M1) forbidden transitions. These transitions are of relativistic origin and, hence, provide unique possibilities to perform precise studies of relativistic effects in many electron systems. In this way, the transitions energies of the 1s22s22p for the 2P3/2 - 2P1/2 transition in Ar13+ and the 1s22s2p for the 3P1 - 3P2 transition in Ar14+, for 36Ar and 40Ar isotopes were compared. The observed isotopic effect has confirmed the relativistic nuclear recoil effect corrections due to the finite nuclear mass in a recent calculation made by Tupitsyn [TSC03], in which major inconsistencies of earlier theoretical methods have been corrected for the first time. The finite mass, or recoil effect, composed of the normal mass shift (NMS), and the specific mass shift (SMS) were corrected for relativistic contributions, RNMS and RSMS. The present experimental results have shown that the recoil effects on the Breit level are indeed very important, as well as the effects of the correlated relativistic dynamics in a many electron ion.
This a review of the present status of heavy-ion collisions at intermediate energies. The main goal of heavy-ion physics in this energy regime is to shed some light on the nuclear equation of state (EOS), hence we present the basic concept of the EOS in nuclear matter as well as of nuclear shock waves which provide the key mechanism for the compression of nuclear matter. The main part of this article is devoted to the models currently used for describing heavy-ion reactions theoretically and to the observables useful for extracting information about the EOS from experiments. A detailed discussion of the flow effects with a broad comparison with the avaible data is presented. The many-body aspects of such reactions are investigated via the multifragmentation break up of excited nuclear systems and a comparison of model calculations with the most recent multifragmentation experiments is presented.
In the framework of the relativistic quantum dynamics approach we investigate antiproton observables in Au-Au collisions at 10.7A GeV. The rapidity dependence of the in-plane directed transverse momentum p(y) of p's shows the opposite sigh of the nucleon flow, which has indeed recently been discovered at 10.7A GeV by the E877 group. The "antiflow" of p's is also predicted at 2A GeV and at 160 A GeV and appears at all energies also for pi's and K's. These predicted p anticorrelations are a direct proof of strong p annihilation in massive heavy ion reactions.
The quantum statistical model (QSM) is used to calculate nuclear fragment distributions in chemical equilibrium. Several observable isotopic effects are predicted for intermediate energy heavy ion collisions. It is demonstrated that particle ratios for different systemsdo not depend on the breakup density-the only free parameter in our model.The importance of entropy measurements is discussed. Specific particle ratios for the system Au-Au are predicted, which can be used to determine the chemical potentials of the hot midrapidity fragment source in nearly central heavy ion collisions. Pacs-Nr. 25.70 Pq
The Monte Carlo parton string model for multiparticle production in hadron-hadron, hadron-nucleus, and nucleus-nucleus collisions at high energies is described. An adequate choice of the parameters in the model gives the possibility of recovering the main results of the dual parton model, with the advantage of treating both hadron and nuclear interactions on the same footing, reducing them to interactions between partons. Also the possibility of considering both soft and hard parton interactions is introduced.
The properties of pions from the hot and dense reaction stage of relativistic heavy ion collisions are investigated with the quantum molecular dynamics model. Pions originating from this reaction stage stem from resonance decay with enhanced mass. They carry high transverse momenta. The calculation shows a direct correlation between high pt pions, early freeze-out times and high freeze-out densities.
Dilepton spectra for p+p and p+d reactions at 4.9GeV are calculated. We consider electromagnetic bremsstrahlung also in inelastic reactions. N* and Delta* decay present the major contributions to the pho and omega meson yields.Pion annihilation yields only 1.5% of all pho's in p+d. The pho mass spectrum is strongly distorted due to phase space effects, populating dominantly dilepton masses below 770MeV.
We calculate thermal photon and neutral pion spectra in ultrarelativistic heavy-ion collisions in the framework of three-fluid hydrodynamics. Both spectra are quite sensitive to the equation of state used. In particular, within our model, recent data for S + Au at 200 AGeV can only be understood if a scenario with a phase transition (possibly to a quark-gluon plasma) is assumed. Results for Au+Au at 11 AGeV and Pb + Pb at 160 AGeV are also presented.
We predict the formation of highly dense baryon-rich resonance matter in Au+Au collisions at AGS energies. The final pion yields show observable signs for resonance matter. The Delta1232 resonance is predicted to be the dominant source for pions of small transverse momenta. Rescattering e ects consecutive excitation and deexcitation of Delta's lead to a long apparent life- time (> 10 fm/c) and rather large volumina (several 100 fm3) of the Delta-matter state. Heavier baryon resonances prove to be crucial for reaction dynamics and particle production at AGS.
Strong mean meson fields, which are known to exist in normal nuclei, experience a violent deformation in the course of a heavy-ion collision at relativistic energies. This may give rise to a new collective mechanism of the particle production, not reducible to the superposition of elementary nucleon-nucleon collisions.
We investigate the sensivity of pionic bounce-off and squeeze-out on the density and momentum dependence of the real part of the nucleon optical potential. For the in-plane pion bounce-off we find a strong sensivity on both the density and momentum dependence whereas the out-of-plane pion squeeze-out shows a strong sensivity only towards the momentum dependence but little sensivity towards the density dependence.
We demonstrate the importance of the Bose-statistical effects for pion production in relativistic heavy-ion collisions. The evolution of the pion phase-space density in central collisions of ultrarelativistic nuclei is studied in a simple kinetic model taking into account the effect of Bose-simulated pion production by the NN collisions in a dense cloud of mesons.
Triple differential cross sections of pions in heavy ion collisions at 1 GeV/nucl. are studied with the IQMD model. After discussing general properties of resonance and pion production we focus on azimuthal correlations: At projectile- and target-rapidities we observe an anticorrelation in the in-plane transverse momentum between pions and protons. At c.m.-rapidity, however, we find that high pt pions are being preferentially emitted perpendicular to the event-plane. We investigate the causes of those correlations and their sensitivity on the density and momentum dependence of the real and imaginary part of the nucleon and pion optical potential.
The rapidity distribution of thermal photons produced in Pb+Pb collisions at CERN-SPS energies is calculated within scaling and three- fluid hydrodynamics. It is shown that these scenarios lead to very different rapidity spectra. A measurement of the rapidity dependence of photon radiation can give cleaner insight into the reaction dynamics than pion spectra, especially into the rapidity dependence of the temperature.
Spectra of various particle species have been calculated with the Quantum Molecular Dynamics (QMD) model for very central collisions of Au+Au. They are compatible with the idea of a fully stopped thermal source which exhibits a transversal expansion besides the thermal distribution of an ideal gas. How- ever, the microscopic analyses of the local flow velocities and temperatures indicate much lower temperatures at densities associated with the freeze-out. The results express the overall impossibility of a model-independent determi- nation of nuclear temperatures from heavy ion spectral data, also at other energies (e.g. CERN) or for other species (i.e. pions, kaons, hyperons)
In the framework of RQMD we investigate antiproton observables in massive heavy ion collisions at AGS energies and compare to preliminary results of the E878 collaboration. We focus here on the considerable influence of the real part of an antinucleon nucleus optical potential on the ¯p momentum spectra. Pacs-numbers: 14.20 Dh, 25.70.-z
In the framework of the relativistic quantum molecular dynamics approach (RQMD) we investigate antideuteron (d) observables in Au+Au collisions at 10.7 AGeV. The impact parameter dependence of the formation ratios d/p2 and d/p2 is calculated. In central collisions, the antideuteron formation ratio is predicted to be two orders of magnitude lower than the deuteron formation ratio. The d yield in central Au+Au collisions is one order of magnitude lower than in Si+Al collisions. In semicentral collisions di erent configuration space distributions of p s and d s lead to a large squeeze out e ect for antideuterons, which is not predicted for the p s.
Different numerical approaches and algorithms arising in the context of modelling of cellular tissue evolution are discussed in this thesis. Being suited in particular to off-lattice agent-based models, the numerical tool of three-dimensional weighted kinetic and dynamic Delaunay triangulations is introduced and discussed for its applicability to adjacency detection. As there exists no implementation of a code that incorporates all necessary features for tissue modelling, algorithms for incremental insertion or deletion of points in Delaunay triangulations and the restoration of the Delaunay property for triangulations of moving point sets are introduced. In addition, the numerical solution of reaction-diffusion equations and their connection to agent-based cell tissue simulations is discussed. In order to demonstrate the applicability of the numerical algorithms, biological problems are studied for different model systems: For multicellular tumour spheroids, the weighted Delaunay triangulation provides a great advantage for adjacency detection, but due to the large cell numbers the model used for the cell-cell interaction has to be simplified to allow for a numerical solution. The agent-based model reproduces macroscopic experimental signatures, but some parameters cannot be fixed with the data available. A much simpler, but in key properties analogous, continuum model based on reaction-diffusion equations is likewise capable of reproducing the experimental data. Both modelling approaches make differing predictions on non-quantified experimental signatures. In the case of the epidermis, a smaller system is considered which enables a more complete treatment of the equations of motion. In particular, a control mechanism of cell proliferation is analysed. Simple assumptions suffice to explain the flow equilibrium observed in the epidermis. In addition, the effect of adhesion on the survival chances of cancerous cells is studied. For some regions in parameter space, stochastic effects may completely alter the outcome. The findings stress the need of establishing a defined experimental model to fix the unknown model parameters and to rule out further models.
We calculate the evolution of quark-gluon-plasma droplets during the hadronization in a thermodynamical model. It is speculated that cooling as well as strangeness enrichment allow for the formation of strangelets even at very high initial entropy per baryon S/Ainit H 500 and low initial baryon numbers of Ainit B H 30. It is shown that the droplet with vanishing initial chemical potential of strange quarks and a very moderate chemical potential of up/down quarks immediately charges up with strangeness. Baryon densi- ties of H 2 0 and strange chemical potentials of µs > 350 MeV are reached if strangelets are stable. The importance of net baryon and net strangeness fluctuations for the possible strangelet formation at RHIC and LHC is em- phasized. Pacs-Classif.: 25.15.tr, 12.38.Mh, 24.85.tp
The extension of the Periodic System into hitherto unexplored domains - anti- matter and hypermatter - is discussed. Starting from an analysis of hyperon and single hypernuclear properties we investigate the structure of multi-hyperon objects (MEMOs) using an extended relativistic meson field theory. These are contrasted with multi-strange quark states (strangelets). Their production mechanism is stud- ied for relativistic collisions of heavy ions from present day experiments at AGS and SPS to future opportunities at RHIC and LHC. It is pointed out that abso- lutely stable hypermatter is unlikely to be produced in heavy ion collisions. New attention should be focused on short lived metastable hyperclusters ( / 10 10s) and on intensity interferometry of multi-strange-baryon correlations.
We demonstrate that the creation of strange matter is conceivable in the midrapidity region of heavy ion collisions at Brookhaven RHIC and CERN LHC. A finite net-baryon density, abundant (anti)strangeness production, as well as strong net-baryon and net-strangeness fluctuations, provide suitable initial conditions for the formation of strangelets or metastable exotic multistrange ( baryonic) objects. Even at very high initial entropy per baryon SyAinit ¯ 500 and low initial baryon numbers of Ainit B ¯ 30 a quark-gluon-plasma droplet can immediately charge up with strangeness and accumulate net-baryon number. PACS numbers: 25.75.Dw, 12.38.Mh, 24.85.+
Abstract: An accurate impact parameter determination in a heavy ion collision is crucial for almost all further analysis. The capabilities of an artificial neural network are investigated to that respect. A novel input generation for the network is proposed, namely the transverse and longitudinal momentum distribution of all outgoing (or actually detectable) particles. The neural network approach yields an improvement in performance of a factor of two as compared to classical techniques. To achieve this improvement simple network architectures and a 5 × 5 input grid in (pt, pz) space are suffcient.
We want to draw the attention to the dynamics of a (finite) hadronizing quark matter drop. Strange and antistrange quarks do not hadronize at the same time for a baryon-rich system1. Both the hadronic and the quark matter phases enter the strange sector fs 6= 0 of the phase diagram almost immediately, which has up to now been neglected in almost all calculations of the time evolution of the system. Therefore it seems questionable, whether final particle yields reflect the actual thermodynamic properties of the system at a certain stage of the evolution. We put special interest on the possible formation of exotic states, namely strangelets (multistrange quark clusters). They may exist as (meta-)stable exotic isomers of nuclear matter 2. It was speculated that strange matter might exist also as metastable exotic multi-strange (baryonic) objects (MEMO s 3). The possible creation in heavy ion collisions of long-lived remnants of the quark-gluon-plasma, cooled and charged up with strangeness by the emission of pions and kaons, was proposed in 1,4,5. Strangelets can serve as signatures for the creation of a quark gluon plasma. Currently, both at the BNL-AGS and at the CERN-SPS experiments are carried out to search for MEMO s and strangelets, e. g. by the E864, E878 and the NA52 collaborations9,
The microscopic phasespace approach URQMD is used to investigate the stopping power and particle production in heavy systems at SPS and RHIC energies. We find no gap in the baryon rapidity distribution even at RHIC. For CERN energies URQMD shows a pile up of baryons and a supression of multi-nucleon clusters at midrapidity.
The stopping behaviour of baryons in massive heavy ion collisions ( s k 10AGeV) is investigated within di erent microscopic models. At SPS-energies the predictions range from full stopping to virtually total transparency. Experimental data are indicating strong stopping. The initial baryo-chemical potentials and temperatures at collider energies and their impact on the formation probability of strange baryon clusters and strangelets are discussed.
Nuclear clusters as a probe for expansion flow in heavy ion reactions at 10-A/GeV - 15-A/GeV.
(1996)
A phase space coalescence description based on the Wigner-function method for cluster formation in relativistic nucleus-nucleus collisions is presented. The momentum distributions of nuclear clusters d,t and He are predicted for central Au(11.6AGeV)Au and Si(14.6AGeV)Si reactions in the framework of the RQMD transport approach. Transverse expansion leads to a strong shoulderarm shape and di erent inverse slope parameters in the transverse spectra of nuclear clusters deviating markedly from thermal distributions. A clear bounce-o event shape is seen: the averaged transverse flow velocities in the reaction plane are for clusters larger than for protons. The cluster yields particularly at low pt at midrapidities and the in-plane (anti)flow of clusters and pions change if suitably strong baryon potential interactions are included. This allows to study the transient pressure at high density via the event shape analysis of nucleons, nucleon clusters and other hadrons.
We investigate the properties of di erent modifications to the linear -model (including a dilaton field associated with broken scale invariance) at finite baryon density and nonzero temperature T. The explicit breaking of chiral symmetry and the way the vector meson mass is generated are significant for the appearance of a phase of nearly vanishing nucleon mass besides the solution describing normal nuclear matter. The elimination of the abnormal solution prohibits the onset of a chiral phase transition but allows to lower the compressibility to a reasonable range. The repulsive contributions from the vector mesons are responsible for the wide range of stability of the normal phase in the (µ, T)-plane. The abnormal solution becomes not only energet- ically preferable to the normal state at high temperature or density, but also mechanically stable due to the inclusion of dilatons. PACS number:12.39.F
We discuss the properties of two distinct forms of hypothetical strange matter, small lumps of strange quark matter (strangelets) and of hyperon matter (metastable exotic multihypernuclear objects: MEMOs), with special empha- sis on their relevance for present and future heavy ion experiments. The masses of small strangelets up to AB = 40 are calculated using the MIT bag model with shell mode filling for various bag parameters. The strangelets are checked for possible strong and weak hadronic decays, also taking into account multiple hadron decays. It is found that strangelets which are stable against strong decay are most likely highly negative charged, contrary to previous findings. Strangelets can be stable against weak hadronic decay but their masses and charges are still rather high. This has serious impact on the present high sensitivity searches in heavy ion experiments at the AGS and CERN facilities. On the other hand, highly charged MEMOs are predicted on the basis of an extended relativistic mean field model. Those objects could be detected in future experiments searching for short lived, rare composites. It is demonstrated that future experiments can be sensitive to a much wider variety of strangelets.
According to the Walecka mean field theory of nuclear interaction the collective mutual deceleration of the colliding nuclei gives rise to the bremsstrahlung of real and virtual ! mesons. It is shown that decays of these mesons may give a noticeable contribution to the observed yields of the baryon antibaryon pairs, dileptons and pions. Excitation functions and rapidity distributions of particles produced by this mechanism are calculated under some simplifying assumptions about the space time variation of meson fields in nuclear collisions. The calculated multiplicities of coherently produced particles grow fast with the bombarding energy, reaching a saturation above the RHIC bombarding energy. In the case of central Au+Au collisions the bremsstrahlung mechanism becomes comparable with particle production in incoherent hadron hadron collisions above the AGS energies. The rapidity spectra of antibaryons and pions exhibit a characteristic two hump structure which is a consequence of incomplete projectile target stopping at the initial stage of the reaction. The predicted distribution of e+e pairs has a strong peak at invariant masses Me+e < 0.5 GeV.
Measured hadron yields from relativistic nuclear collisions can be equally well understood in two physically distinct models, namely a static thermal hadronic source versus a time-dependent, non-equilibrium hadronization off a quark gluon plasma droplet. Due to the time-dependent particle evaporation off the hadronic surface in the latter approach the hadron ratios change (by factors of / 5) in time. The overall particle yields then reflect time averages over the actual thermodynamic properties of the system at a certain stage of evolution.
We study the time scale for pressure equilibration in heavy ion collisions at AGS energies within the three-fluid hydrodynamical model and a microscopic cascade model (UrQMD). We find that kinetic equilibrium is reached in both models after a time of 5 fm/c (center-of-mass time). Thus, observables which are sensitive to the early stage of the reaction differ considerably from the expectations within the instant thermalization scenario (one-fluid hydrodynamical model).
Basic problems of the semiclassical microscopic modelling of strongly interacting systems are discussed within the framework of Quantum Molecular Dynamics (QMD). This model allows to study the influence of several types of nucleonic interactions on a large variety of observables and phenomena occur- ring in heavy ion collisions at relativistic energies. It is shown that the same predictions can be obtained with several numerically completely di erent and independently written programs as far as the same model parameters are employed and the same basic approximations are made. Many observ- ables are robust against variations of the details of the model assumptions used. Some of the physical results, however, depend also on rather technical parameters like the preparation of the initial configuration in phase space. This crucial problem is connected with the description of the ground state of single nuclei, which di ers among the various approaches. An outlook to an improved molecular dynamics scheme for heavy ion collisions is given.
Abstract: We study transverse expansion and directed flow in Au(11AGeV)Au reactions within a multi-fluid dynamical model. Although we do not employ an equation of state (EoS) with a first order phase transition, we find a slow increase of the transverse velocities of the nucleons with time. A similar behaviour can be observed for the directed nucleon flow. This is due to non-equilibrium e ects which also lead to less and slower conversion of longitudinal into transverse momentum. We also show that the proton rapidity distribution at CERN energies, as calculated within this model, agrees well with the preliminary NA44-data.