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Formation and evolution of the quark-gluon plasma

Imposing an equilibrium between the thermal pressure of deconfined quarks and gluons and the dynamical compression pressure exercised by in-flowing nuclear matter, we study the initial thermal conditions reached in a quark-gluon plasma fireball formed in a relativistic heavy ion collision. We show t...

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Detalles Bibliográficos
Autores principales: Letessier, Jean, Rafelski, Johann, Tounsi, Ahmed
Lenguaje:eng
Publicado: 1994
Materias:
Acceso en línea:https://dx.doi.org/10.1016/0370-2693(94)90172-4
http://cds.cern.ch/record/264508
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author Letessier, Jean
Rafelski, Johann
Tounsi, Ahmed
author_facet Letessier, Jean
Rafelski, Johann
Tounsi, Ahmed
author_sort Letessier, Jean
collection CERN
description Imposing an equilibrium between the thermal pressure of deconfined quarks and gluons and the dynamical compression pressure exercised by in-flowing nuclear matter, we study the initial thermal conditions reached in a quark-gluon plasma fireball formed in a relativistic heavy ion collision. We show that entropy is produced primarily in the pre-equilibrium stage of the reaction. We test our approach, comparing our results with the S-W/Pb collision results at 200 GeV A and find a surprising degree of agreement assuming about 50% stopping. We apply our method to a determination of the conditions in collisions of Au-Au at 11 GeV A and Pb-Pb at 157 GeV A, assuming full stopping of momentum, energy and baryon number. Our detailed results directly determine the spectral shape and abundance of (strange) hadrons and electromagnetic probes (photons, dileptons) produced in the collision, and we explore specific experimental consequences.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1994
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spelling cern-2645082023-03-14T18:59:38Zdoi:10.1016/0370-2693(94)90172-4http://cds.cern.ch/record/264508engLetessier, JeanRafelski, JohannTounsi, AhmedFormation and evolution of the quark-gluon plasmaParticle Physics - TheoryImposing an equilibrium between the thermal pressure of deconfined quarks and gluons and the dynamical compression pressure exercised by in-flowing nuclear matter, we study the initial thermal conditions reached in a quark-gluon plasma fireball formed in a relativistic heavy ion collision. We show that entropy is produced primarily in the pre-equilibrium stage of the reaction. We test our approach, comparing our results with the S-W/Pb collision results at 200 GeV A and find a surprising degree of agreement assuming about 50% stopping. We apply our method to a determination of the conditions in collisions of Au-Au at 11 GeV A and Pb-Pb at 157 GeV A, assuming full stopping of momentum, energy and baryon number. Our detailed results directly determine the spectral shape and abundance of (strange) hadrons and electromagnetic probes (photons, dileptons) produced in the collision, and we explore specific experimental consequences.Imposing an equilibrium between the thermal pressure of deconfined quarks and gluons and the dynamical compression pressure exercised by in-flowing nuclear matter, we study the initial thermal conditions reached in a quark-gluon plasma fireball formed in a relativistic heavy ion collision. We show that entropy is produced primarily in the pre-equilibrium stage of the reaction. We test our approach, comparing our results with the S-W/Pb collision results at 200 GeV A and find a surprising degree of agreement assuming about 50% stopping. We apply our method to a determination of the conditions in collisions of Au-Au at 11 GeV A and Pb-Pb at 157 GeV A, assuming full stopping of momentum, energy and baryon number. Our detailed results directly determine the spectral shape and abundance of (strange) hadrons and electromagnetic probes (photons, dileptons) produced in the collision, and we explore specific experimental consequences.Imposing an equilibrium between the thermal pressure of deconfined quarks and gluons and the dynamical compression pressure exercised by in-flowing nuclear matter, we study the initial thermal conditions reached in a quark-gluon plasma fireball formed in a relativistic heavy ion collision. We show that entropy is produced primarily in the pre-equilibrium stage of the reaction. We test our approach, comparing our results with the S → W Pb collision results at 200 GeV A and find a surprising degree of agreement assuming about 50% stopping. We apply our method to a determination of the conditions in collisions of Au→Au at 11 GeV A and Pb→Pb at 157 GeV A, assuming full stopping of momentum, energy and baryon number. Our detailed results directly determine the spectral shape and abundance of (strange) hadrons and electromagnetic probes (photons, dileptons) produced in the collision, and we explore specific experimental consequences.hep-ph/9711324CERN-TH-7304-94PAR-LPTHE-94-23PAR-LPTHE-94-23CERN-TH-7304-94oai:cds.cern.ch:2645081994
spellingShingle Particle Physics - Theory
Letessier, Jean
Rafelski, Johann
Tounsi, Ahmed
Formation and evolution of the quark-gluon plasma
title Formation and evolution of the quark-gluon plasma
title_full Formation and evolution of the quark-gluon plasma
title_fullStr Formation and evolution of the quark-gluon plasma
title_full_unstemmed Formation and evolution of the quark-gluon plasma
title_short Formation and evolution of the quark-gluon plasma
title_sort formation and evolution of the quark-gluon plasma
topic Particle Physics - Theory
url https://dx.doi.org/10.1016/0370-2693(94)90172-4
http://cds.cern.ch/record/264508
work_keys_str_mv AT letessierjean formationandevolutionofthequarkgluonplasma
AT rafelskijohann formationandevolutionofthequarkgluonplasma
AT tounsiahmed formationandevolutionofthequarkgluonplasma