English

Testing a nonlinear solution of the Israel-Stewart theory

General Relativity and Quantum Cosmology 2024-09-13 v3

Abstract

In this work, we test the capability of an exact solution found in the framework of a nonlinear extension of the Israel-Stewart theory to fit the supernovae Ia, gravitational lensing, and black hole shadow data. This exact solution is a generalization of one previously found for a dissipative unified dark matter model in the context of the near-equilibrium description of dissipative processes, where we do not have the full regime of the nonlinear picture. This generalized solution is restricted to the case where a positive entropy production is guaranteed and is tested under the condition that ensures its causality, local existence, and uniqueness. From the observational constraints, we found that this generalized solution is a good candidate in the description of the observational late-time data used in this work, with best-fit values H0=73.20.9+0.8km/sMpcH_{0}=73.2_{-0.9}^{+0.8}\,\frac{km/s}{Mpc}, q0=0.410.03+0.03q_{0}=-0.41_{-0.03}^{+0.03}, ξ^0=0.880.17+0.09\hat{\xi}_{0}=0.88_{-0.17}^{+0.09}, ϵ=0.340.04+0.03\epsilon=0.34_{-0.04}^{+0.03}, and k=0.270.20+0.37k=0.27_{-0.20}^{+0.37}. Therefore, we show that the nonlinear regime of the Israel-Stewart theory consistently describes the recent accelerated expansion of the universe without the inclusion of some kind of dark energy component and also provides a more realistic description of the fluids that make up the late Universe.

Keywords

Cite

@article{arxiv.2109.08823,
  title  = {Testing a nonlinear solution of the Israel-Stewart theory},
  author = {Miguel Cruz and Norman Cruz and Esteban González and Samuel Lepe},
  journal= {arXiv preprint arXiv:2109.08823},
  year   = {2024}
}

Comments

13 pages, 4 figures. Improved version, updated data analysis in the "Observational Constraints" section