Parton-hadron matter in- and out-off equilibrium
arXiv:1304.7154 · doi:10.1088/1742-6596/458/1/012019
Abstract
We study the shear and bulk viscosities of partonic and hadronic matter - as well as the electric conductivity - as functions of temperature within the Parton-Hadron-String Dynamics (PHSD) off-shell transport approach. Dynamical hadronic and partonic systems in equilibrium are studied by the PHSD simulations in a finite box with periodic boundary conditions. The ratio of the shear viscosity to entropy density from PHSD shows a minimum (with a value of about 0.1) close to the critical temperature . For , i.e. in the hadronic phase, the ratio rises fast with decreasing temperature due to a lower interaction rate of the hadronic system and a significantly smaller number of degrees-of-freedom. The bulk viscosity -- evaluated in the relaxation time approach -- is found to strongly depend on the effects of mean fields (or potentials) in the partonic phase. We find a significant rise of the ratio in the vicinity of the critical temperature , when consistently including the scalar mean-field from PHSD, which is also in agreement with that from lQCD calculations. Furthermore, we present the results for the ratio , which is found to depend non-trivially on temperature and to generally agree with the lQCD calculations as well. Within the PHSD calculations, the strong maximum of close to has to be attributed to mean-fields (or potential) effects that in PHSD are encoded in the temperature dependence of the quasiparticle masses, which is related to the infrared enhancement of the resummed (effective) coupling . We also find that the dimensionless ratio of the electric conductivity over temperature rises above approximately linearly with up to , but approaches a constant above , as expected qualitatively from perturbative QCD (pQCD).
8 pages, 6 figures, contribution to the 29th Winter Workshop on Nuclear Dynamics, February 3-10, 2013, Squaw Valley, California, USA
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