Quasiparticle theory of transport coefficients for hadronic matter at finite temperature and baryon density

M. Albright and J. I. Kapusta
Phys. Rev. C 93, 014903 – Published 11 January 2016

Abstract

We develop a flexible quasiparticle theory of transport coefficients of hot hadronic matter at finite baryon density. We begin with a hadronic quasiparticle model which includes a scalar and a vector mean field. Quasiparticle energies and the mean fields depend on temperature and baryon chemical potential. Starting with the quasiparticle dispersion relation, we derive the Boltzmann equation and use the Chapman-Enskog expansion to derive formulas for the shear and bulk viscosities and thermal conductivity. We obtain both relaxation-time approximation formulas and more general integral equations. Throughout the work, we explicitly enforce the Landau-Lifshitz conditions of fit and ensure the theory is thermodynamically self-consistent. The derived formulas should be useful for predicting the transport coefficients of the hadronic phase of matter produced in heavy-ion collisions at the Relativistic Heavy Ion Collider and at other accelerators.

  • Received 17 August 2015

DOI:https://doi.org/10.1103/PhysRevC.93.014903

©2016 American Physical Society

Physics Subject Headings (PhySH)

Nuclear Physics

Authors & Affiliations

M. Albright* and J. I. Kapusta

  • School of Physics & Astronomy, University of Minnesota, Minneapolis, Minnesota 55455, USA

  • *albright@physics.umn.edu
  • kapusta@physics.umn.edu

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Issue

Vol. 93, Iss. 1 — January 2016

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