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Bulk viscosity of strongly interacting matter in the relaxation time approximation

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

This paper presents how thermal mean field effects are incorporated consistently in the hydrodynamical modelling of heavy-ion collisions. The nonequilibrium correction to the distribution function resulting from a temperature-dependent mass is obtained in a procedure which automatically satisfies the Landau matching condition and is thermodynamically consistent. The physics of the bulk viscosity is studied here for Boltzmann and Bose-Einstein gases within the Chapman-Enskog and 14-moment approaches in the relaxation time approximation. Constant and temperature-dependent masses are considered in turn. It is shown that, in the small mass limit, both methods lead to the same value of the ratio of the bulk viscosity over its relaxation time. The inclusion of a temperature-dependent mass leads to the emergence of the $\beta_\lambda$-function in that ratio, and it is of the expected parametric form for the Boltzmann gas, while for the Bose-Einstein case it is affected by the infrared cut-off. This suggests that the relaxation time approximation may be too crude to obtain a reliable form of $\zeta/\tau_R$ for gases obeying Bose-Einstein statistics.

fields

hep-ph 2

years

2025 2

verdicts

UNVERDICTED 2

representative citing papers

Normal mode analysis within relativistic massive transport

hep-ph · 2025-05-07 · unverdicted · novelty 7.0

Normal mode analysis of the relativistic Boltzmann equation for massive particles reveals coupling between sound and heat channels, mass-dependent critical wavenumbers, and an infinite branch cut for Landau damping.

citing papers explorer

Showing 2 of 2 citing papers.

  • Normal mode analysis within relativistic massive transport hep-ph · 2025-05-07 · unverdicted · none · ref 18 · internal anchor

    Normal mode analysis of the relativistic Boltzmann equation for massive particles reveals coupling between sound and heat channels, mass-dependent critical wavenumbers, and an infinite branch cut for Landau damping.

  • Analytic structure of stress-energy response functions and new Kubo formulae hep-ph · 2025-07-27 · unverdicted · none · ref 35 · internal anchor

    Authors derive new Kubo formulae for transport coefficients by analyzing analytic structures of stress-energy response functions in second- and third-order hydrodynamics.