arXiv:2604.25059·v1·Nuclear Theory
Chapman-Enskog calculation of the shear viscosity of quark-gluon plasma including all scatterings at finite temperature
Okey Ohanaka🇺🇸 · Zi-Wei Lin🇺🇸
Abstract
We use the Chapman-Enskog method to investigate the shear viscosity of the quark-gluon plasma with a focus on its relation to parton cross sections. We use the recently obtained analytical expression for the shear viscosity of a massless quark-gluon gas at chemical equilibrium with Boltzmann statistics and all scatterings with arbitrary cross sections. Here we apply this general expression to cross sections at finite temperature that are based on perturbative-QCD and screened with scaled thermal masses and . We find that the Chapman-Enskog results on versus at are qualitatively similar to but higher than the corresponding leading-order results from the AMY framework. We then find that using allows the Chapman-Enskog results to match well the corresponding AMY results as it includes the effect of using thermal masses (instead of self-energies) to screen the cross sections. In addition, we show that the shear viscosity-to-entropy density ratio is very sensitive to the choice of momentum scale in the strong coupling, where the choice of leads to for or 3 at the QCD phase transition temperature . These results lay the foundation for mapping parton cross sections to given shear viscosity in parton transport models and QCD effective kinetic theory.
Comments: 19 pages, 8 figures