Coupling hydrodynamics to nonequilibrium degrees of freedom in strongly interacting quark-gluon plasma
Abstract
Relativistic hydrodynamics simulations of quark-gluon plasma play a pivotal role in our understanding of heavy ion collisions at RHIC and LHC. They are based on a phenomenological description due to Mueller, Israel, Stewart (MIS) and others, which incorporates viscous effects and ensures a well-posed initial value problem. Focusing on the case of conformal plasma we propose a generalization which includes, in addition, the dynamics of the least damped far-from-equilibrium degree of freedom found in strongly coupled plasmas through the AdS/CFT correspondence. We formulate new evolution equations for general flows and then test them in the case of N=4 super Yang-Mills plasma by comparing their solutions alongside solutions of MIS theory with numerical computations of isotropization and boost-invariant flow based on holography. In these tests the new equations reproduce the results of MIS theory when initialized close to the hydrodynamic stage of evolution, but give a more accurate description of the dynamics when initial conditions are set in the pre-equilibrium regime.
Keywords
Cite
@article{arxiv.1409.5087,
title = {Coupling hydrodynamics to nonequilibrium degrees of freedom in strongly interacting quark-gluon plasma},
author = {Michal P. Heller and Romuald A. Janik and Michal Spalinski and Przemyslaw Witaszczyk},
journal= {arXiv preprint arXiv:1409.5087},
year = {2016}
}
Comments
Minor improvements; references added