Magnetized strange quark matter in gravity with bilinear and special form of time varying deceleration parameter
arXiv:1707.00979 · doi:10.1016/j.newast.2017.10.010
Abstract
In this paper, we have studied homogeneous and anisotropic, locally rotationally symmetric (LRS) Bianchi type-I universe model with magnetized strange quark matter (MSQM) distribution and cosmological constant in gravity. The exact solutions of the field equations are obtained under bilinear and special form of time varying deceleration parameter (DP). Firstly we have considered two specific form of bilinear DP with a single parameter of the form: and , which leads to a function with constant or linear nature with respect to the choice of constant . Second one is the special form of the DP as . From obtained results, we could say that in the early universe the magnetic flux has more effects and it gradually reducing its effects in later. For , we get and . So the strange quark matter along with magnetic epoch gives an idea of accelerated expansion of the universe as per the observations of the type Ia Supernovae.
11 pages, 24 figures, to appear in New Astronomy
References in corpus (12)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- Unified cosmic history in modified gravity: from F(R) theory to Lorentz non-invariant models
- f(R,T) gravity
- Measuring the Baryon Acoustic Oscillation scale using the SDSS and 2dFGRS
- Quantum field theory in a magnetic field: From quantum chromodynamics to graphene and Dirac semimetals
- Static Spherically Symmetric Wormholes in Gravity
- Cosmology with inhomogeneous magnetic fields
- Compact stars in gravity
- Anisotropic cosmological models in gravity with variable deceleration parameter
- Magnetized strange quark matter and magnetized strange quark stars
- Quark magnetar in three-flavor Nambu--Jona-Lasinio model with vector interaction and magnetized gluon potential
- Magnetized strange quark matter in a quasiparticle description