Accretion dynamics in black holes with spontaneous Lorentz symmetry breaking

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Main Authors: Cordeiro, Daniela S. J., Junior, Ednaldo L. B., Junior, José Tarciso S. S., Lobo, Francisco S. N., Ramos, Jorde A. A., Rodrigues, Manuel E., Rubiera-Garcia, Diego, da Silva, Luís F. Dias, Vieira, Henrique A.
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Published: 2025
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author Cordeiro, Daniela S. J.
Junior, Ednaldo L. B.
Junior, José Tarciso S. S.
Lobo, Francisco S. N.
Ramos, Jorde A. A.
Rodrigues, Manuel E.
Rubiera-Garcia, Diego
da Silva, Luís F. Dias
Vieira, Henrique A.
author_facet Cordeiro, Daniela S. J.
Junior, Ednaldo L. B.
Junior, José Tarciso S. S.
Lobo, Francisco S. N.
Ramos, Jorde A. A.
Rodrigues, Manuel E.
Rubiera-Garcia, Diego
da Silva, Luís F. Dias
Vieira, Henrique A.
contents We investigate the spherical accretion of various types of fluids onto a Schwarzschild-like black hole solution modified by a Kalb-Ramond field implementing spontaneous Lorentz symmetry violation (LV). The system is analyzed for isothermal fluids characterized by the equation of state $p=ωρ$, including ultra-stiff, ultra-relativistic, and radiation fluids. We investigate the effect of the LV parameter $l$ on the fluid density $ρ(r)$, radial velocity $u(r)$, and accretion rate $\dot{M}$. Using a Hamiltonian dynamical systems approach, we examine the behavior near critical points and identify the sonic transitions in each scenario. Our results show that the LV parameter influences the location of critical points, the flow structure, and the accretion rate, with $l>0$ ($l<0$) enhancing (suppressing) the latter. For ultra-stiff fluids, no critical points are found, and the flow remains entirely subsonic. For ultra-relativistic and radiation fluids, transonic solutions exist, with the position of the sonic point depending on the sign of $l$. We also analyze polytropic fluids $p=\mathcal{K} ρ^Γ$ with $Γ=5/3$ and $Γ=4/3$, observing similar qualitative behavior, where the sonic transition is affected by both the equation of state and the LV parameter. These findings suggest that Lorentz symmetry breaking can significantly alter accretion dynamics in black hole spacetimes.
format Preprint
id arxiv_https___arxiv_org_abs_2507_22031
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Accretion dynamics in black holes with spontaneous Lorentz symmetry breaking
Cordeiro, Daniela S. J.
Junior, Ednaldo L. B.
Junior, José Tarciso S. S.
Lobo, Francisco S. N.
Ramos, Jorde A. A.
Rodrigues, Manuel E.
Rubiera-Garcia, Diego
da Silva, Luís F. Dias
Vieira, Henrique A.
General Relativity and Quantum Cosmology
High Energy Astrophysical Phenomena
High Energy Physics - Theory
We investigate the spherical accretion of various types of fluids onto a Schwarzschild-like black hole solution modified by a Kalb-Ramond field implementing spontaneous Lorentz symmetry violation (LV). The system is analyzed for isothermal fluids characterized by the equation of state $p=ωρ$, including ultra-stiff, ultra-relativistic, and radiation fluids. We investigate the effect of the LV parameter $l$ on the fluid density $ρ(r)$, radial velocity $u(r)$, and accretion rate $\dot{M}$. Using a Hamiltonian dynamical systems approach, we examine the behavior near critical points and identify the sonic transitions in each scenario. Our results show that the LV parameter influences the location of critical points, the flow structure, and the accretion rate, with $l>0$ ($l<0$) enhancing (suppressing) the latter. For ultra-stiff fluids, no critical points are found, and the flow remains entirely subsonic. For ultra-relativistic and radiation fluids, transonic solutions exist, with the position of the sonic point depending on the sign of $l$. We also analyze polytropic fluids $p=\mathcal{K} ρ^Γ$ with $Γ=5/3$ and $Γ=4/3$, observing similar qualitative behavior, where the sonic transition is affected by both the equation of state and the LV parameter. These findings suggest that Lorentz symmetry breaking can significantly alter accretion dynamics in black hole spacetimes.
title Accretion dynamics in black holes with spontaneous Lorentz symmetry breaking
topic General Relativity and Quantum Cosmology
High Energy Astrophysical Phenomena
High Energy Physics - Theory
url https://arxiv.org/abs/2507.22031