Magnetic Pressure Dominance Stabilizes AGN Disks Against Gravitational Instability

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Main Authors: Gerling-Dunsmore, Hannalore J., Begelman, Mitchell C., Simon, Jacob B., Armitage, Philip J.
Format: Preprint
Published: 2025
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author Gerling-Dunsmore, Hannalore J.
Begelman, Mitchell C.
Simon, Jacob B.
Armitage, Philip J.
author_facet Gerling-Dunsmore, Hannalore J.
Begelman, Mitchell C.
Simon, Jacob B.
Armitage, Philip J.
contents Magnetic effects have long been considered a possible factor in stabilizing the outer regions of active galactic nuclei (AGN) accretion disks against gravitational instability (GI). However, the computational demands of testing this hypothesis have prevented comprehensive study of this problem. Here, we present results from a suite of 6 isothermal magnetohydrodynamics (MHD) shearing box simulations, 3 initialized with strong magnetization ($β^{\rm{mid}}_{0} = p_{\rm{gas}} / p_{\rm{mag}} = 10^{2.5}$) and 3 initialized with weak magnetization ($β^{\rm mid}_{0} = 10^{4}$). For each magnetization, we performed simulations with both strong ($Q_{0} = 1.0$) and weak ($Q_{0} = 10.0$) self-gravity, where $Q_{0} = \frac{c_{\rm{s}}Ω}{πG Σ_{0}}$ is the Toomre stability parameter; we also performed pure MHD simulations for comparison. We find that our strongly magnetized disk stabilized against GI after initialization to critical stability against GI, while our corresponding weakly magnetized disk did not. We show that the strongly magnetized, strongly self-gravitating disk became dominated by magnetic pressure, which led to its stabilization.
format Preprint
id arxiv_https___arxiv_org_abs_2508_16842
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Magnetic Pressure Dominance Stabilizes AGN Disks Against Gravitational Instability
Gerling-Dunsmore, Hannalore J.
Begelman, Mitchell C.
Simon, Jacob B.
Armitage, Philip J.
High Energy Astrophysical Phenomena
Astrophysics of Galaxies
Magnetic effects have long been considered a possible factor in stabilizing the outer regions of active galactic nuclei (AGN) accretion disks against gravitational instability (GI). However, the computational demands of testing this hypothesis have prevented comprehensive study of this problem. Here, we present results from a suite of 6 isothermal magnetohydrodynamics (MHD) shearing box simulations, 3 initialized with strong magnetization ($β^{\rm{mid}}_{0} = p_{\rm{gas}} / p_{\rm{mag}} = 10^{2.5}$) and 3 initialized with weak magnetization ($β^{\rm mid}_{0} = 10^{4}$). For each magnetization, we performed simulations with both strong ($Q_{0} = 1.0$) and weak ($Q_{0} = 10.0$) self-gravity, where $Q_{0} = \frac{c_{\rm{s}}Ω}{πG Σ_{0}}$ is the Toomre stability parameter; we also performed pure MHD simulations for comparison. We find that our strongly magnetized disk stabilized against GI after initialization to critical stability against GI, while our corresponding weakly magnetized disk did not. We show that the strongly magnetized, strongly self-gravitating disk became dominated by magnetic pressure, which led to its stabilization.
title Magnetic Pressure Dominance Stabilizes AGN Disks Against Gravitational Instability
topic High Energy Astrophysical Phenomena
Astrophysics of Galaxies
url https://arxiv.org/abs/2508.16842