Shear viscosity, Bulk viscosity and Relaxation Times of Causal Dissipative Relativistic Fluid-Dynamics at Finite Temperature and Chemical Potential
arXiv:1105.2483 · doi:10.1016/j.nuclphysa.2012.07.005
Abstract
The microscopic formulas for the shear viscosity , the bulk viscosity , and the corresponding relaxation times and of causal dissipative relativistic fluid-dynamics are obtained at finite temperature and chemical potential by using the projection operator method. The non-triviality of the finite chemical potential calculation is attributed to the arbitrariness of the operator definition for the bulk viscous pressure.We show that, when the operator definition for the bulk viscous pressure is appropriately chosen, the leading-order result of the ratio, over , coincides with the same ratio obtained at vanishing chemical potential. We further discuss the physical meaning of the time-convolutionless (TCL) approximation to the memory function, which is adopted to derive the main formulas. We show that the TCL approximation violates the time reversal symmetry appropriately and leads results consistent with the quantum master equation obtained by van Hove. Furthermore, this approximation can reproduce an exact relation for transport coefficients obtained by using the f-sum rule derived by Kadanoff and Martin. Our approach can reproduce also the result in Baier et al.(2008) Ref. \cite{con} by taking into account the next-order correction to the TCL approximation, although this correction causes several problems.
v3:26 pages, 4 figures, published version
References in corpus (14)
- Relativistic viscous hydrodynamics, conformal invariance, and holography
- Dissipative relativistic fluid dynamics: a new way to derive the equations of motion from kinetic theory
- Second order hydrodynamic coefficients from kinetic theory
- Stability and Causality in relativistic dissipative hydrodynamics
- Relativistic Dissipative Hydrodynamics: A Minimal Causal Theory
- Transport Coefficients of Non-Newtonian Fluid and Causal Dissipative Hydrodynamics
- Bulk Viscosity and Relaxation Time of Causal Dissipative Relativistic Fluid Dynamics
- Microscopic formula for transport coefficients of causal hydrodynamics
- Shear viscosity coefficient and relaxation time of causal dissipative hydrodynamics in QCD
- Renormalized Linear Kinetic Theory as Derived from Quantum Field Theory - a novel diagrammatic method for computing transport coefficients -
- Extensivity of Irreversible Current and Stability in Causal Dissipative Hydrodynamics
- Formulating Viscous Hydrodynamics for Large Velocity Gradients
- Consistency of field-theoretical and kinetic calculations of viscous transport coefficients for a relativistic fluid
- Non-Newtonian Properties of Relativistic Fluids
Cited by in corpus (12)
- Transport Coefficients of Bulk Viscous Pressure in the 14-moment approximation
- Hydrodynamic Approaches in Relativistic Heavy Ion Reactions
- Complete relativistic second-order dissipative hydrodynamics from the entropy principle
- Shear viscosity of quark matter at finite temperature in magnetic fields
- Shear viscosity from thermal fluctuations in relativistic conformal fluid dynamics
- Helical massive fermions under rotation
- Exact solutions in quantum field theory under rotation
- Viscous control of minimum uncertainty state in hydrodynamics
- Viscosity of non equilibrium hot dense QCD drop formed at LHC
- Non-conformal evolution of magnetic fields during reheating
- Formulation of relativistic dissipative fluid dynamics and its applications in heavy-ion collisions
- Dynamic density correlations in a baryon rich fluid using Mori-Zwanzig-Nakjima projection operator method