Matter accretion onto a conformal gravity black hole

Abstract The accretion of test fluids flowing onto a black hole is investigated. Particularly, by adopting a dynamical Hamiltonian approach, we are capable to find the critical points for various cases of black hole in conformal gravity. In these cases, we have analyzed the general solutions of accr...

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Main Authors: G. Abbas, A. Ditta
Format: Article
Language:English
Published: SpringerOpen 2020-12-01
Series:European Physical Journal C: Particles and Fields
Online Access:https://doi.org/10.1140/epjc/s10052-020-08787-x
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spelling doaj-311704331c544737a40c471cab3b200e2021-01-03T12:17:57ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522020-12-01801212110.1140/epjc/s10052-020-08787-xMatter accretion onto a conformal gravity black holeG. Abbas0A. Ditta1Department of Mathematics, The Islamia University of BahawalpurDepartment of Mathematics, The Islamia University of BahawalpurAbstract The accretion of test fluids flowing onto a black hole is investigated. Particularly, by adopting a dynamical Hamiltonian approach, we are capable to find the critical points for various cases of black hole in conformal gravity. In these cases, we have analyzed the general solutions of accretion employing the isothermal equations of state. The steady state and spherically symmetric accretion of different test fluids onto the conformal gravity black hole has been considered. Further, we have classified these flows in the context of equations of state and the cases of conformal gravity black hole. The new behavior of polytropic fluid accretion is also discussed in all three cases of black hole. Black hole mass accretion rate is the most important part of this research in which we have investigated that the Schwarzschild black hole produce a typical signature than the conformal gravity black hole and Schwarzschild–de Sitter black hole. The critical fluid flow and the mass accretion rate have been presented graphically by the impact parameters $$\beta $$ β , $$\gamma $$ γ , k and these parameters have great significance. Additionally, the maximum mass rate of accretion fall near the universal and Killing horizons and minimum rate of accretion occurs in between these regions. Finally, the results are compared with the different cases of black hole available in the literature.https://doi.org/10.1140/epjc/s10052-020-08787-x
collection DOAJ
language English
format Article
sources DOAJ
author G. Abbas
A. Ditta
spellingShingle G. Abbas
A. Ditta
Matter accretion onto a conformal gravity black hole
European Physical Journal C: Particles and Fields
author_facet G. Abbas
A. Ditta
author_sort G. Abbas
title Matter accretion onto a conformal gravity black hole
title_short Matter accretion onto a conformal gravity black hole
title_full Matter accretion onto a conformal gravity black hole
title_fullStr Matter accretion onto a conformal gravity black hole
title_full_unstemmed Matter accretion onto a conformal gravity black hole
title_sort matter accretion onto a conformal gravity black hole
publisher SpringerOpen
series European Physical Journal C: Particles and Fields
issn 1434-6044
1434-6052
publishDate 2020-12-01
description Abstract The accretion of test fluids flowing onto a black hole is investigated. Particularly, by adopting a dynamical Hamiltonian approach, we are capable to find the critical points for various cases of black hole in conformal gravity. In these cases, we have analyzed the general solutions of accretion employing the isothermal equations of state. The steady state and spherically symmetric accretion of different test fluids onto the conformal gravity black hole has been considered. Further, we have classified these flows in the context of equations of state and the cases of conformal gravity black hole. The new behavior of polytropic fluid accretion is also discussed in all three cases of black hole. Black hole mass accretion rate is the most important part of this research in which we have investigated that the Schwarzschild black hole produce a typical signature than the conformal gravity black hole and Schwarzschild–de Sitter black hole. The critical fluid flow and the mass accretion rate have been presented graphically by the impact parameters $$\beta $$ β , $$\gamma $$ γ , k and these parameters have great significance. Additionally, the maximum mass rate of accretion fall near the universal and Killing horizons and minimum rate of accretion occurs in between these regions. Finally, the results are compared with the different cases of black hole available in the literature.
url https://doi.org/10.1140/epjc/s10052-020-08787-x
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