A new well-behaved class of compact strange astrophysical model consistent with observational data

Abstract The main focus of this paper is to discuss the solutions of Einstein’s Field Equations (EFEs) for compact spherical objects study. To supply exact solution of the EFEs, we have considered the distribution of anisotropic matter governed by a new version of Chaplygin fluid equation of state (...

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Main Authors: Abdelghani Errehymy, Mohammed Daoud
Format: Article
Language:English
Published: SpringerOpen 2021-06-01
Series:European Physical Journal C: Particles and Fields
Online Access:https://doi.org/10.1140/epjc/s10052-021-09330-2
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spelling doaj-8fb0b174eb874ed082837a047755154b2021-07-04T11:15:47ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522021-06-0181611410.1140/epjc/s10052-021-09330-2A new well-behaved class of compact strange astrophysical model consistent with observational dataAbdelghani Errehymy0Mohammed Daoud1Laboratory of High Energy Physics and Condensed Matter (LPHEMaC), Department of Physics, Faculty of Sciences Aïn Chock, Hassan II University of CasablancaDepartment of Physics, Faculty of Sciences, University of Ibn TofailAbstract The main focus of this paper is to discuss the solutions of Einstein’s Field Equations (EFEs) for compact spherical objects study. To supply exact solution of the EFEs, we have considered the distribution of anisotropic matter governed by a new version of Chaplygin fluid equation of state (EoS). To determine different constants, we have represented the outer space-time by the Schwarzschild metric. Using the observed values of the mass for the various strange spherical object candidates, we have expanded anisotropic emphasize at the surface to forecast accurate radius estimates. Moreover, we implement various analysis to examine the physical acceptability and stability of our suggested stellar model viz., the energy conditions, cracking method, adiabatic index, etc. Graphical survey exhibits that the obtained stellar system fulfills the physical and mathematical prerequisites of the strange astrophysical object candidates Cyg X-2, Vela X-1, 4U 1636-536, 4U 1608-52, PSR J1903+327 to examine the various physical parameters and their effects on the anisotropic stellar model. The investigation reveals that complicated geometries arise from the interior matter distribution obeys a new version of Chaplygin fluid EoS and they are physically pertinent in the investigation of discovered compact structures.https://doi.org/10.1140/epjc/s10052-021-09330-2
collection DOAJ
language English
format Article
sources DOAJ
author Abdelghani Errehymy
Mohammed Daoud
spellingShingle Abdelghani Errehymy
Mohammed Daoud
A new well-behaved class of compact strange astrophysical model consistent with observational data
European Physical Journal C: Particles and Fields
author_facet Abdelghani Errehymy
Mohammed Daoud
author_sort Abdelghani Errehymy
title A new well-behaved class of compact strange astrophysical model consistent with observational data
title_short A new well-behaved class of compact strange astrophysical model consistent with observational data
title_full A new well-behaved class of compact strange astrophysical model consistent with observational data
title_fullStr A new well-behaved class of compact strange astrophysical model consistent with observational data
title_full_unstemmed A new well-behaved class of compact strange astrophysical model consistent with observational data
title_sort new well-behaved class of compact strange astrophysical model consistent with observational data
publisher SpringerOpen
series European Physical Journal C: Particles and Fields
issn 1434-6044
1434-6052
publishDate 2021-06-01
description Abstract The main focus of this paper is to discuss the solutions of Einstein’s Field Equations (EFEs) for compact spherical objects study. To supply exact solution of the EFEs, we have considered the distribution of anisotropic matter governed by a new version of Chaplygin fluid equation of state (EoS). To determine different constants, we have represented the outer space-time by the Schwarzschild metric. Using the observed values of the mass for the various strange spherical object candidates, we have expanded anisotropic emphasize at the surface to forecast accurate radius estimates. Moreover, we implement various analysis to examine the physical acceptability and stability of our suggested stellar model viz., the energy conditions, cracking method, adiabatic index, etc. Graphical survey exhibits that the obtained stellar system fulfills the physical and mathematical prerequisites of the strange astrophysical object candidates Cyg X-2, Vela X-1, 4U 1636-536, 4U 1608-52, PSR J1903+327 to examine the various physical parameters and their effects on the anisotropic stellar model. The investigation reveals that complicated geometries arise from the interior matter distribution obeys a new version of Chaplygin fluid EoS and they are physically pertinent in the investigation of discovered compact structures.
url https://doi.org/10.1140/epjc/s10052-021-09330-2
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