Thermodynamics of viscous dark energy for the late future time universe
David Tamayo

TL;DR
This paper investigates the thermodynamic properties of dark energy in the late universe, analyzing perfect and dissipative fluid models with bulk viscosity, and finds conditions under which thermodynamic laws are satisfied.
Contribution
It provides a comprehensive analysis of dark energy thermodynamics using both Eckart and Israel-Stewart theories, including analytical solutions and thermodynamic constraints.
Findings
No entropy production in perfect fluid models with dynamical equation of state.
Entropy grows exponentially or as a power-law in dissipative models depending on viscosity.
Power-law temperature-energy density relation and thermodynamic viability of phantom regimes.
Abstract
In this work we explore the thermodynamic aspects of dark energy for late future time universe in two different scenarios: as a perfect fluid with constant and variable equation of state parameter; and as dissipative fluid described by a barotropic equation of state with bulk viscosity in the framework of the Eckart theory and the full Israel-Stewart theory. We explore cosmological solutions for a flat, homogeneous and isotropic universe; and we assume the late future time behavior when the dark energy dominates the cosmic evolution. When modeled as a perfect fluid with a dynamical equation of state, , the dark energy has an energy density, temperature and entropy well defined and an interesting result is that there is no entropy production even though been dynamical. For dissipative dark energy, in the Eckart theory two cases are studied: and $\xi…
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