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Time Dependence of Chemical Freeze-out in Relativistic Heavy Ion Collisions

We investigate chemical and thermal freeze-out time dependencies for strange particle production for CERN SPS heavy ion collisions in the framework of a dynamical hadronic transport code. We show that the Lambda yield changes considerably after hadronization in the case of Pb+Pb collisions, whereas...

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Detalles Bibliográficos
Autores principales: Bellwied, R, Caines, H L, Humanic, T J
Lenguaje:eng
Publicado: 2000
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevC.62.054906
http://cds.cern.ch/record/432525
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author Bellwied, R
Caines, H L
Humanic, T J
author_facet Bellwied, R
Caines, H L
Humanic, T J
author_sort Bellwied, R
collection CERN
description We investigate chemical and thermal freeze-out time dependencies for strange particle production for CERN SPS heavy ion collisions in the framework of a dynamical hadronic transport code. We show that the Lambda yield changes considerably after hadronization in the case of Pb+Pb collisions, whereas for smaller system sizes (e.g. S+S) the direct particle production dominates over production from inelastic rescattering. Chemical freeze-out times for strange baryons in Pb+Pb are smaller than for non-strange baryons, but they are still sufficiently long for hadronic rescattering to contribute significantly to the final Lambda yield. Based on inelastic and elastic cross section estimates we expect the trend of shorter freeze-out times (chemical and kinetic), and thus less particle production after hadronization, to continue for multi-strange baryons.
id cern-432525
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2000
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spelling cern-4325252019-09-30T06:29:59Zdoi:10.1103/PhysRevC.62.054906http://cds.cern.ch/record/432525engBellwied, RCaines, H LHumanic, T JTime Dependence of Chemical Freeze-out in Relativistic Heavy Ion CollisionsParticle Physics - PhenomenologyWe investigate chemical and thermal freeze-out time dependencies for strange particle production for CERN SPS heavy ion collisions in the framework of a dynamical hadronic transport code. We show that the Lambda yield changes considerably after hadronization in the case of Pb+Pb collisions, whereas for smaller system sizes (e.g. S+S) the direct particle production dominates over production from inelastic rescattering. Chemical freeze-out times for strange baryons in Pb+Pb are smaller than for non-strange baryons, but they are still sufficiently long for hadronic rescattering to contribute significantly to the final Lambda yield. Based on inelastic and elastic cross section estimates we expect the trend of shorter freeze-out times (chemical and kinetic), and thus less particle production after hadronization, to continue for multi-strange baryons.hep-ph/0003264WSU-NP-2000-1oai:cds.cern.ch:4325252000-03-27
spellingShingle Particle Physics - Phenomenology
Bellwied, R
Caines, H L
Humanic, T J
Time Dependence of Chemical Freeze-out in Relativistic Heavy Ion Collisions
title Time Dependence of Chemical Freeze-out in Relativistic Heavy Ion Collisions
title_full Time Dependence of Chemical Freeze-out in Relativistic Heavy Ion Collisions
title_fullStr Time Dependence of Chemical Freeze-out in Relativistic Heavy Ion Collisions
title_full_unstemmed Time Dependence of Chemical Freeze-out in Relativistic Heavy Ion Collisions
title_short Time Dependence of Chemical Freeze-out in Relativistic Heavy Ion Collisions
title_sort time dependence of chemical freeze-out in relativistic heavy ion collisions
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1103/PhysRevC.62.054906
http://cds.cern.ch/record/432525
work_keys_str_mv AT bellwiedr timedependenceofchemicalfreezeoutinrelativisticheavyioncollisions
AT caineshl timedependenceofchemicalfreezeoutinrelativisticheavyioncollisions
AT humanictj timedependenceofchemicalfreezeoutinrelativisticheavyioncollisions