English

Anisotropic hydrodynamics for conformal Gubser flow

Nuclear Theory 2015-02-05 v2 High Energy Physics - Phenomenology

Abstract

We derive the equations of motion for a system undergoing boost-invariant longitudinal and azimuthally-symmetric transverse "Gubser flow" using leading-order anisotropic hydrodynamics. This is accomplished by assuming that the one-particle distribution function is ellipsoidally-symmetric in the momenta conjugate to the de Sitter coordinates used to parameterize the Gubser flow. We then demonstrate that the SO(3)_q symmetry in de Sitter space further constrains the anisotropy tensor to be of spheroidal form. The resulting system of two coupled ordinary differential equations for the de Sitter-space momentum scale and anisotropy parameter are solved numerically and compared to a recently obtained exact solution of the relaxation-time-approximation Boltzmann equation subject to the same flow. We show that anisotropic hydrodynamics describes the spatio-temporal evolution of the system better than all currently known dissipative hydrodynamics approaches. In addition, we prove that anisotropic hydrodynamics gives the exact solution of the relaxation-time approximation Boltzmann equation in the ideal, eta/s -> 0, and free-streaming, eta/s -> infinity, limits.

Keywords

Cite

@article{arxiv.1410.6790,
  title  = {Anisotropic hydrodynamics for conformal Gubser flow},
  author = {Mohammad Nopoush and Radoslaw Ryblewski and Michael Strickland},
  journal= {arXiv preprint arXiv:1410.6790},
  year   = {2015}
}

Comments

32 pages, 3 figures; v2: includes some typo fixes, version submitted to PRD

R2 v1 2026-06-22T06:35:48.827Z