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Particle production in central Pb+Pb collisions was studied with the NA49 large acceptance spectrometer at the CERN SPS at beam energies of 20, 30, 40, 80, and 158 GeV per nucleon. A change of the energy dependence is observed around 30A GeV for the yields of pions and strange particles as well as for the shapes of the transverse mass spectra. At present only a reaction scenario with onset of deconfinement is able to reproduce the measurements.
System size dependence of multiplicity fluctuations of charged particles produced in nuclear collisions at 158 A GeV was studied in the NA49 CERN experiment. Results indicate a non-monotonic dependence of the scaled variance of the multiplicity distribution with a maximum for semi-peripheral Pb+Pb interactions with number of projectile participants of about 35. This effect is not observed in a string-hadronic model of nuclear collision HIJING.
Event-by-event fluctuations of particle ratios in central Pb + Pb collisions at 20 to 158 AGeV
(2004)
In the vicinity of the QCD phase transition, critical fluctuations have been predicted to lead to non-statistical fluctuations of particle ratios, depending on the nature of the phase transition. Recent results of the NA49 energy scan program show a sharp maximum of the ratio of K+ to Pi+ yields in central Pb+Pb collisions at beam energies of 20-30 AGeV. This observation has been interpreted as an indication of a phase transition at low SPS energies. We present first results on event-by-event fluctuations of the kaon to pion and proton to pion ratios at beam energies close to this maximum.
In dieser Arbeit wurde die Produktion von Omega und Anti-Omega Hyperonen in zentralen Pb+Pb-Kollisionen bei 40 A GeV am CERN SPS mit dem NA49 Experiment untersucht. Der in dieser Arbeit verwendete Datensatz wurde während einer 4 wöchigen Strahlzeit 1999 aufgenommen. Dabei wurden 579446 Zentrale (7.2 % des totalen Wirkungsquerschnitts) Ereignisse, bei zwei verschiedenen Polarit aten (std+ und std-), aufgezeichnet. Die Omega Produktion bei 40 A GeV wird mit Messungen bei anderen Energien verglichen, um damit die Energieabhangigkeit der Omega Produktion zu untersuchen. Das Experiment NA49 erlaubt genaue Messungen in einem weiten Akzeptanzbereich. Man misst die Zerfallstochter des Omegas und die Zerfallstochter des Omegas mit hochauflösenden TPCs. Mehrfach seltsame Teilchen (Theta, Omega) werden durch ihre Zerfallstopologie identifiziert. Es wurden verschieden Qualitatskriterien verwendet, um den kombinatorischen Untergrund zu reduzieren. NA49 hat nur eine endliche geometrische Akzeptanz und kann deshalb nicht den ganzen Phasenraum abdecken. Außerdem wurden verschiedene Qualitatskriterien verwendet, um ein akzeptables Signal zu Untergrund Verhaltnis zu erhalten. Da es wegen der Akzeptanz und der Qualitatskriterien zu Verlusten kommt, muss man darauf korrigieren. Dies macht man mittels einer Simulation, in der man Omega Hyperonen simuliert. Die Omega Hyperonen werden uber drei Rapiditatseinheiten um den Bereich zentraler Rapiditat und mit Transversalimpulsen von 0.9 bis 2.4 GeV/c gemessen. Es wurde der Temperaturparameter des Omega Hyperons bei 40 A GeV bestimmt. Im Rahmen der Fehler ist der Temperaturparameter der 40 A GeV dem der 158 A GeV gleich. Betrachtet man den Temperaturparameter der Omegas als Funktion der Schwerpunktenergie, gibt es einen Anstieg des Temperaturparameters von SPS- zu RHIC-Energien. Es wurden jeweils die Multiplizitaten bei mittlerer Rapiditat für Omega und Anti-Omega bestimmt. Die Multiplizität vom Omega betragt 0.068 +- 0.020 (stat.) +- 0.019 (sys.) und vom Anti-Omega 0.027 +- 0.008 (stat.) +- 0.007 (sys.). Die Multiplizitaten bei mittlerer Rapiditat steigen für Omega und Anti-Omega mit der Schwerpunktenergie von SPS- zu RHIC-Energien. Die Ergebnisse stimmen mit den Messungen der NA57 Kollaboration überein. Bei 40 A GeV wurde erstmals eine Rapiditatsverteilung gemessen. Die daraus resultierende totale Multiplizitat fur Omega + Anti-Omega betragt 0.20 +- 0.03 (stat.) +- 0.04 (sys.). Mit steigender Schwerpunktenergie steigt die totale Multiplizität und die Rapiditätsverteilung wird breiter. Um den systematischen Fehler zu bestimmen, wurde eine Stabilität-Analyse des mt-Spektrums und der Rapiditatsverteilung durchgefuhrt. Der systematische Fehler der mt-Spektren betragt 18 % und der totalen Multiplizitat 21 %. Schaut man sich die Anregungsfunktion der Omega und Anti-Omega als Funktion der Schwerpunktenergie an, erkennt man, dass es eine leichte Energieabhängigkeit beim Anti-Omega / Pi-Minus ....
The strong nuclear force is described by Quantum Chromodynamics (QCD), the parallel field theory to Quantum Electrodynamics (QED) that describes the electromagnetic force. It is propagated by gluons analogously to photons in the electromagnetic force, but unlike photons, which do not carry electric charge, gluons carry color, and they can self-interact. However, as individual quarks have never been observed in nature, it is postulated that the color charge itself is confined, and hence all baryons and mesons must be colorless objects. To study nuclear matter under extreme conditions, it is necessary to create hot and dense nuclear matter in the laboratory. In such conditions the confinement between quarks and gluons is cancelled (deconfinement). This state is characterized with a qusi-free behavior of quarks and gluons. The strange (s) and anti-strange (anti-s) quarks are not contained in the colliding nuclei, but are newly produced and show up in the strange hadrons in the final state. It was suggested that strange particle production is enhanced in the QGP with respect to that in a hadron gas. This enhancement is relative to a collision where a transition to a QGP phase does not take place, such as p+p collisions where the system size is very small. Therefore the energy- and system size dependence is studied to receive a picture about the initial state. In this thesis experimental results on the energy- and system size dependence of Xi hyperon production at the CERN SPS is shown. All measurements were performed with the NA49 detector at the CERN SPS. NA49 took central lead-lead collisions from 20 - 158 AGeV, minimus bias lead-lead collisions at 40 and 158 AGeV, and semi-central silicon-silicon colisions at 158 AGeV. The NA49 experiment features a large acceptance in the forward hemisphere allowing for measurements of Xi rapidity spectra. At the SPS accelerator at CERN Pb+Pb collisions are performed with beam energies to 158 AGeV. The analyzed data sets were taken in the period from 1999 to 2002. The NA49 experiment is a large acceptance hadron spectrometer, which measures charged hadrons in a wide acceptance. The main components are the four TPCs (Time Projection Chamber). The centrality of nucleon-nucleon collisions was done by measuring the not in the collision participating (spectator-) nucleons in the VETO-calorimeter. The study of strangeness is motivated by its role as a signature for the Quark Gluon Plasma. Any enhancement in the yield must be with respect to a ’normal’ yield, where a QGP is not formed. This is usually taken to mean suitably scaled p+p collisions, where the volume of the system created is too small for a QGP to occur. The results at SPS and RHIC energies show an enhancement, with the doubly strange Xi? being enhanced more than the Lambda, in accordance with the original prediction. However, the enhancement at SPS energies is higher than at RHIC energies.
A non-monotonic energy dependence of the K + / pi + ratio with a sharp maximum close to 30 A GeV is observed in central Pb+Pb collisions. Within a statistical model of the early stage, this is interpreted as a sign of the phase transition to a QGP, which causes a sharp change in the energy dependence of the strangeness to entropy ratio. This observation naturally motivates us to study the production of multistrange hyperons (Xi, Omega) as a function of the beam energy. Furthermore it was suggested that the kinematic freeze-out of Omega takes place directly at QGP hadronization. If this is indeed the case, the transverse momentum spectra of the Omega directly reflect the transverse expansion velocity of a hadronizing QGP. In this report we show preliminary NA49 results on Omega - and Omega + production in central Pb+Pb collisions at 40 and 158 A GeV and compare them to measurements of Xi - and Xi + production in central Pb+Pb collisions at 30, 40, 80 and 158 A GeV.
Rapidity distributions for $\Lambda$ and $\bar{\Lambda}$ hyperons in central Pb-Pb collisions at 40, 80 and 158 A$\cdot$GeV and for ${\rm K}_{s}^{0}$ mesons at 158 A$\cdot$GeV are presented. The lambda multiplicities are studied as a function of collision energy together with AGS and RHIC measurements and compared to model predictions. A different energy dependence of the $\Lambda/\pi$ and $\bar{\Lambda}/\pi$ is observed. The $\bar{\Lambda}/\Lambda$ ratio shows a steep increase with collision energy. Evidence for a $\bar{\Lambda}/\bar{\rm p}$ ratio greater than 1 is found at 40 A$\cdot$GeV.
Rapidity distributions for Lambda and anti-Lambda hyperons in central Pb-Pb collisions at 40, 80 and 158 AGeV and for K 0 s mesons at 158 AGeV are presented. The lambda multiplicities are studied as a function of collision energy together with AGS and RHIC measurements and compared to model predictions. A different energy dependence of the Lambda/pi and anti-Lambda/pi is observed. The anti-Lambda/Lambda ratio shows a steep increase with collision energy. Evidence for a anti-Lambda/anti-p ratio greater than 1 is found at 40 AGeV.
The energy dependence of hadron production in central Pb+Pb collisions is presented and discussed. In particular, midrapidity m_T-spectra for pi-, K-, K+, p, bar p, d, phi, Lambda and bar Lambda at 40, 80 and 158 AGeV are shown. In addition Xi and Omega spectra are available at 158 AGeV. The spectra allow to determine the thermal freeze-out temperature T and the transverse flow velocity beta_T at the three energies. We do not observe a significant energy dependence of these parameters; furthermore there is no indication of early thermal freeze-out of Xi and Omega at 158 AGeV. Rapidity spectra for pi-, K-, K+ and phi at 40, 80 and 158 AGeV are shown, as well as first results on Omega rapidity distributions at 158 AGeV. The chemical freeze-out parameters T and mu_B at the three energies are determined from the total yields. The parameters are close to the expected phase boundary in the SPS energy range and above. Using the total yields of kaons and lambdas, the energy dependence of the strangeness to pion ratio is discussed. A maximum in this ratio is found at 40 AGeV. This maximum could indicate the formation of deconfined matter at energies above 40 AGeV. A search for open charm in a large sample of 158 AGeV events is presented. No signal is observed. This result is compared to several model predictions.
Report from NA49
(2004)
The most recent data of NA49 on hadron production in nuclear collisions at CERN SPS energies are presented. Anomalies in the energy dependence of pion and kaon production in central Pb+Pb collisions are observed. They suggest that the onset of deconfinement is located at about 30 AGeV. Large multiplicity and transverse momentum fluctuations are measured for collisions of intermediate mass systems at 158 AGeV. The need for a new experimental programme at the CERN SPS is underlined.