Instability induced pressure isotropization in a longitudinally expanding system
Abstract
In two previous works [arXiv:1009.4363,arXiv:1107.0668], we studied the time evolution of a system of real scalar fields with quartic coupling which shares important features with the Color Glass Condensate description of heavy ion collisions. Our primary objective was to understand how such a system, when initialized with a non-perturbatively large classical field configuration, reaches thermal equilibrium. An essential goal of these works was to highlight the role played by the quantum fluctuations. However, these studies considered only a system confined within a box of fixed volume. In the present paper, we extend this work to a system that expands in the longitudinal direction thereby more closely mimicking a heavy ion collision. We conclude that the microscopic processes that drive the system towards equilibrium are able to keep up with the expansion of the system; the pressure tensor becomes isotropic despite the anisotropic expansion.
Cite
@article{arxiv.1206.3336,
title = {Instability induced pressure isotropization in a longitudinally expanding system},
author = {Kevin Dusling and Thomas Epelbaum and François Gelis and Raju Venugopalan},
journal= {arXiv preprint arXiv:1206.3336},
year = {2015}
}
Comments
revised version to appear in PRD, new section on comparison with hydrodynamics, 32 pages, 21 figures