Observational constraints on a generalized equation of state model
Abstract
We investigate the cosmological implications of a generalized total equation of state (EoS) model by constraining its parameters using observational datasets to effectively characterize the universe's expansion history and its dynamic properties. We introduce three parameters: , , and to capture the EoS behavior across different evolutionary phases. Our analysis indicates that at high redshifts (), the EoS approaches a matter- or radiation-dominated regime, transitioning to a dark energy-dominated phase as , where it tends towards a constant value . Using a Markov Chain Monte Carlo (MCMC) method, we analyze a combined dataset that includes 31 data points from and 1701 data points from the Pantheon+ dataset. The results reveal a smooth transition from deceleration to acceleration in the universe's expansion, with current EoS values suggesting quintessence-like behavior. The model aligns with observations and indicates that dark energy is dynamically evolving rather than acting as a cosmological constant. Furthermore, energy conditions and stability analyses highlight the nature and future of dark energy. This parametrized EoS model thus offers a robust framework for understanding the complexities of dark energy and the evolution of the cosmos.
Keywords
Cite
@article{arxiv.2412.20073,
title = {Observational constraints on a generalized equation of state model},
author = {M. Koussour and S. Bekov and A. Syzdykova and S. Muminov and I. Ibragimov and J. Rayimbaev},
journal= {arXiv preprint arXiv:2412.20073},
year = {2025}
}
Comments
Physics of the Dark Universe accepted version