DBI scalar field theory for QGP hydrodynamics
Abstract
A way to describe the hydrodynamics of the quark-gluon plasma using a DBI action is proposed, based on the model found by Heisenberg for high energy scattering of nucleons. The expanding plasma is described as a shockwave in a DBI model for a real scalar standing in for the pion, and I show that one obtains a fluid description in terms of a relativistic fluid that near the shock is approximately ideal () and conformal. One can introduce an extra term inside the square root of the DBI action that generates a shear viscosity term in the energy-momentum tensor near the shock, as well as a bulk viscosity, and regulates the behaviour of the energy density at the shock, making it finite. The resulting fluid satisfies the relativistic Navier-Stokes equation with defined in terms of and its derivatives. One finds a relation between the parameters of the theory and the QGP thermodynamics, , and by fixing and from usual (low multiplicity) particle scattering, one finds .
Keywords
Cite
@article{arxiv.1512.05257,
title = {DBI scalar field theory for QGP hydrodynamics},
author = {Horatiu Nastase},
journal= {arXiv preprint arXiv:1512.05257},
year = {2016}
}
Comments
19 pages, no figures; clarifications added in section 4