English

The shear viscosity of parton matter under anisotropic scatterings

Nuclear Theory 2022-10-27 v2

Abstract

The shear viscosity η\eta of a quark-gluon plasma in equilibrium can be calculated analytically using multiple methods or numerically using the Green-Kubo relation. It has been realized, which we confirm here, that the Chapman-Enskog method agrees well with the Green-Kubo result for both isotropic and anisotropic two-body scatterings. We then apply the Chapman-Enskog method to study the shear viscosity of the parton matter from a multi-phase transport model. In particular, we study the parton matter in the center cell of central and midcentral Au+Au collisions at 200A200A GeV and Pb+Pb collisions at 2760A2760A GeV, which is assumed to be a plasma in thermal equilibrium but partial chemical equilibrium. As a result of using a constant Debye mass or cross section σ\sigma for parton scatterings, the η/s\eta/s ratio increases with time (as the effective temperature decreases), contrary to the trend preferred by Bayesian analysis of the experimental data or pQCD results that use temperature-dependent Debye masses. At σ=3\sigma=3 mb that enables the transport model to approximately reproduce the elliptic flow data of the bulk matter, the average η/s\eta/s of the parton matter in partial equilibrium is found to be very small, between one to two times 1/(4π)1/(4\pi).

Keywords

Cite

@article{arxiv.2208.06027,
  title  = {The shear viscosity of parton matter under anisotropic scatterings},
  author = {Noah M. MacKay and Zi-Wei Lin},
  journal= {arXiv preprint arXiv:2208.06027},
  year   = {2022}
}

Comments

Added subsection on the Green-Kubo relation to better match published version