English

Disentangling Initial-State and Evolution Effects in Heavy-Ion Collisions Using EPOS and PHSD

High Energy Physics - Phenomenology 2025-09-09 v1 High Energy Physics - Experiment Nuclear Theory

Abstract

In this study we examine the impact of the initial stage and dynamical evolution on final-state observables in heavy-ion collisions. For this goal we develop a novel approach, EPOSir+PHSDe, which employs EPOS initial conditions as the starting point for parton and hadron evolution within the PHSD microscopic transport approach. By examining the space-time evolution of matter in this model and comparing to EPOS (which starts with an S-matrix approach for parallel scatterings for the initial conditions and uses a hydrodynamic evolution for the quark-gluon plasma stage with the UrQMD as afterburner) and PHSD (which starts with primary high energy NNNN scattering realized via the LUND string model and continues with fully microscopic transport dynamics for strongly interacting partonic and hadronic matter), we identify the key differences in the final particle distributions among the three approaches. Our analysis focuses on rapidity, transverse momentum spectra, and flow harmonics v2v_2 for Au+Au collisions at the invariant energy of sNN=200\sqrt{s_{NN}}=200 GeV. We find a dominant influence of dynamical evolution over the initial conditions on the final observables.

Keywords

Cite

@article{arxiv.2509.05428,
  title  = {Disentangling Initial-State and Evolution Effects in Heavy-Ion Collisions Using EPOS and PHSD},
  author = {Mahbobeh Jafarpour and Vadym Voronyuk and Klaus Werner and Elena Bratkovskaya and Damien Vintache},
  journal= {arXiv preprint arXiv:2509.05428},
  year   = {2025}
}

Comments

25 pages, 30 figures

R2 v1 2026-07-01T05:23:45.724Z