Examination of directed flow as a signal for a phase transition in relativistic nuclear collisions

J. Steinheimer, J. Auvinen, H. Petersen, M. Bleicher, and H. Stöcker
Phys. Rev. C 89, 054913 – Published 28 May 2014

Abstract

The sign change of the slope of the directed flow of baryons has been predicted as a signal for a first order phase transition within fluid dynamical calculations. Recently, the directed flow of identified particles was measured by the STAR Collaboration in the beam energy scan program. In this article, we examine the collision energy dependence of directed flow v1 in fluid dynamical model descriptions of heavy ion collisions for sNN=3–20 GeV. The first step is to reproduce the existing predictions within pure fluid dynamical calculations. As a second step we investigate the influence of the order of the phase transition on the anisotropic flow within a state-of-the-art hybrid approach that describes other global observables reasonably well. We find that, in the hybrid approach, there seems to be no sensitivity of the directed flow on the equation of state and in particular on the existence of a first order phase transition. In addition, we explore more subtle sensitivities such as the Cooper-Frye transition criterion and discuss how momentum conservation and the definition of the event plane affects the results. At this point, none of our calculations matches qualitatively the behavior of the STAR data; the values of the slopes are always larger than in the data.

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  • Received 27 March 2014

DOI:https://doi.org/10.1103/PhysRevC.89.054913

©2014 American Physical Society

Authors & Affiliations

J. Steinheimer, J. Auvinen, H. Petersen, M. Bleicher, and H. Stöcker

  • Frankfurt Institute for Advanced Studies, Ruth-Moufang-Strasse 1, D-60438 Frankfurt am Main, Germany; Institut für Theoretische Physik, Goethe Universität Frankfurt, Max-von-Laue-Strasse 1, D-60438 Frankfurt am Main, Germany; and GSI Helmholtzzentrum für Schwerionenforschung GmbH, Planckstrasse 1, D-64291 Darmstadt, Germany

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Issue

Vol. 89, Iss. 5 — May 2014

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