arXiv:2606.13363·v2·High Energy Physics — Phenomenology
Transport coefficients of strongly interacting quark-gluon plasma including elastic and inelastic scattering within the dynamical quasiparticle model
Gaia Ingrosso🇩🇪 · Olga Soloveva🇩🇪 · Ilia Grishmanovskii🇩🇪 · Taesoo Song🇩🇪 · Elena Bratkovskaya🇩🇪
Abstract
We study the impact of inelastic gluon-radiation and absorption processes on the transport coefficients of the quark-gluon plasma within the dynamical quasiparticle model (DQPM) in the temperature--baryon-chemical-potential plane . Extending the baseline established in previous DQPM calculations, we include gluon-radiation and the inverse gluon-absorption scattering channels with massive partons and effective DQPM propagators and vertices. The corresponding momentum-dependent interaction rates and relaxation times are used to calculate the shear viscosity, bulk viscosity, electric conductivity, and baryon diffusion coefficient as functions of temperature and baryon chemical potential . Within the relaxation time approximation, we find that contributions systematically reduce all considered transport coefficients relative to the only results, in accordance with the decrease of the relaxation times. In the thermal regime explored here, however, this reduction remains moderate, since the investigated inelastic rates stay below the ones over the considered range. The inelastic channels become more relevant mainly for partonic scatterings at large momenta, which are thermally suppressed in the strongly interacting QGP. At , the resulting , , and are compatible with available lattice-QCD estimates within uncertainties. At finite , our results provide predictions for the transport properties of QCD matter relevant for beam-energy-scan programs.
Comments: 14 pages, 10 figures