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Relativistic anisotropic hydrodynamics

2017/12/31 by Mubarak Alqahtani, Mohammad Nopoush, Michael Strickland · 1 citation
Physics and Astronomy · #nucl-th #hep-ph

paper · pdf · doi:10.1016/j.ppnp.2018.05.004

published as Progress in Particle and Nuclear Physics, Volume 101, 204-248 (2018) · 87 pages, 25 figures; Invited review fo Progress in Nuclear and Particle Physics; v2 typo fixes and clarifications in some spots; published version

arxiv created 2018/06/06 · arxiv updated 2018/06/08

Abstract

In this paper we review recent progress in relativistic anisotropic hydrodynamics. We begin with a pedagogical introduction to the topic which takes into account the advances in our understanding of this topic since its inception. We consider both conformal and non-conformal systems and demonstrate how one can implement a realistic equation of state using a quasiparticle approach. We then consider the inclusion of non-spheroidal (non-ellipsoidal) corrections to leading-order anisotropic hydrodynamics and present the findings of the resulting second-order viscous anisotropic hydrodynamics framework. We compare the results obtained in both the conformal and non-conformal cases with exact solutions to the Boltzmann equation and demonstrate that, in all known cases, anisotropic hydrodynamics best reproduces the exact solutions. Based on this success, we then discuss the phenomenological application of anisotropic hydrodynamics. Along these lines, we review techniques which can be used to convert a momentum-space anisotropic fluid into hadronic degrees of freedom by generalizing the original idea of Cooper-Frye freeze-out to momentum-space anisotropic systems. And, finally, we present phenomenological results of 3+1d quasiparticle anisotropic hydrodynamic simulations and compare them to experimental data produced in 2.76 TeV Pb-Pb collisions at the LHC. Our results indicate that anisotropic hydrodynamics provides a promising framework for describing the dynamics of the momentum-space anisotropic QGP created in heavy-ion collisions.

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