Relativistic Anisotropic Fluid Spheres Satisfying a Non-Linear Equation of State
arXiv:2005.11038 · doi:10.1140/epjc/s10052-020-7956-0
Abstract
In this work, a spherically symmetric and static relativistic anisotropic fluid sphere solution of the Einstein field equations is provided. To build this particular model, we have imposed metric potential and an equation of state. Specifically, the so-called modified generalized Chaplygin equation of state with and depending on two parameters, namely, and . These ingredients close the problem, at least mathematically. However, to check the feasibility of the model, a complete physical analysis has been performed. Thus, we analyze the obtained geometry and the main physical observables, such as the density , the radial , and tangential pressures as well as the anisotropy factor . Besides, the stability of the system has been checked by means of the velocities of the pressure waves and the relativistic adiabatic index. It is found that the configuration is stable in considering the adiabatic index criteria and is under hydrostatic balance. Finally, to mimic a realistic compact object, we have imposed the radius to be . With this information and taking different values of the parameter the total mass of the object has been determined. The resulting numerical values for the principal variables of the model established that the structure could represent a quark (strange) star mixed with dark energy.
13 pages, 5 figures. Published in EPJ C
References in corpus (11)
- Sound Speeds, Cracking and Stability of Self-Gravitating Anisotropic Compact Objects
- All static spherically symmetric anisotropic solutions of Einstein's equations
- Compact Stars as Dark Matter Probes
- Anisotropic models for compact stars
- Singularity-free solutions for anisotropic charged fluids with Chaplygin equation of state
- Electrically Charged Strange Quark Stars
- Generalized model for anisotropic compact stars
- FRW Bulk Viscous Cosmology with Modified Chaplygin Gas in Flat Space
- A comparison of Hořava-Lifshitz gravity and Einstein gravity through thin-shell wormhole construction
- Study of Anisotropic Compact Stars with Quintessence Field and Modified Chaplygin Gas in f(T) Gravity
- Modeling usual and unusual anisotropic spheres