English

Equation of state dependence of directed flow in a microscopic transport model

Nuclear Theory 2017-02-15 v1 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

We study the sensitivities of the directed flow in Au+Au collisions on the equation of state (EoS), employing the transport theoretical model JAM. The EoS is modified by introducing a new collision term in order to control the pressure of a system by appropriately selecting an azimuthal angle in two-body collisions according to a given EoS. It is shown that this approach is an efficient method to modify the EoS in a transport model. The beam energy dependence of the directed flow of protons is examined with two different EoS, a first-order phase transition and crossover. It is found that our approach yields quite similar results as hydrodynamical predictions on the beam energy dependence of the directed flow; Transport theory predicts a minimum in the excitation function of the slope of proton directed flow and does indeed yield negative directed flow, if the EoS with a first-order phase transition is employed. Our result strongly suggests that the highest sensitivity for the critical point can be seen in the beam energy range of 4.7\srtNN11.54.7\leq\srtNN\leq11.5 GeV.

Keywords

Cite

@article{arxiv.1611.08023,
  title  = {Equation of state dependence of directed flow in a microscopic transport model},
  author = {Yasushi Nara and Harri Niemi and Jan Steinheimer and Horst Stoecker},
  journal= {arXiv preprint arXiv:1611.08023},
  year   = {2017}
}

Comments

7 pages, 5 figures