English

Collective flow without hydrodynamics: simulation results for relativistic ion collisions

Nuclear Theory 2015-10-28 v3 High Energy Physics - Phenomenology Fluid Dynamics

Abstract

Flow signatures in experimental data from relativistic ion collisions are usually interpreted as a fingerprint of the presence of a hydrodynamic phase during the evolution of these systems. In this work, flow signatures arising from event-by-event viscous hydrodynamics are compared to those arising from event-by-event non-interacting particle dynamics (free-streaming), both followed by a late-stage hadronic cascade, in d+Au, 3He+Au at sqrt(s)=200 GeV and p+Pb collisions at sqrt(s)=5 TeV, respectively. For comparison, also Pb+Pb collisions at sqrt(s)=2.76 TeV are simulated. It is found that non-hydrodynamic evolution can give rise to equal or larger radial flow than hydrodynamics with eta/s=0.08 in all simulated collision systems. In light-on-heavy-ion collisions, free-streaming gives rise to triangular and quadrupolar flow comparable to or larger than that from hydrodynamics, but it generally leads to considerably smaller elliptic flow. As expected, free-streaming leads to considerably less elliptic, triangular and quadrupolar flow than hydrodynamics in nucleus-nucleus collisions, such as event-by-event Pb+Pb collisions at sqrt(s)=2.76 TeV.

Keywords

Cite

@article{arxiv.1504.02529,
  title  = {Collective flow without hydrodynamics: simulation results for relativistic ion collisions},
  author = {Paul Romatschke},
  journal= {arXiv preprint arXiv:1504.02529},
  year   = {2015}
}

Comments

18 pages; 9 figures; v2: minor errors corrected, HBT radii added; v3: added subsection on radial flow breakdown in peripheral p+Pb, matches published version

R2 v1 2026-06-22T09:13:54.443Z