Mass-ratio and Magnetic Flux Dependence of Modulated Accretion from Circumbinary Disks

Accreting supermassive binary black holes (SMBBHs) are potential multimessenger sources because they emit both gravitational-wave and electromagnetic (EM) radiation. Past work has shown that their EM output may be periodically modulated by an asymmetric density distribution in the circumbinary disk,...

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Veröffentlicht in:The Astrophysical journal 2021-12, Vol.922 (2), p.175
Hauptverfasser: Noble, Scott C., Krolik, Julian H., Campanelli, Manuela, Zlochower, Yosef, Mundim, Bruno C., Nakano, Hiroyuki, Zilhão, Miguel
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container_issue 2
container_start_page 175
container_title The Astrophysical journal
container_volume 922
creator Noble, Scott C.
Krolik, Julian H.
Campanelli, Manuela
Zlochower, Yosef
Mundim, Bruno C.
Nakano, Hiroyuki
Zilhão, Miguel
description Accreting supermassive binary black holes (SMBBHs) are potential multimessenger sources because they emit both gravitational-wave and electromagnetic (EM) radiation. Past work has shown that their EM output may be periodically modulated by an asymmetric density distribution in the circumbinary disk, often called an “overdensity” or “lump;” this modulation could possibly be used to identify a source as a binary. We explore the sensitivity of the overdensity to SMBBH mass ratio and magnetic flux through the accretion disk. We find that the relative amplitude of the overdensity and its associated EM periodic signal both degrade with diminishing mass ratio, vanishing altogether somewhere between 1:2 and 1:5. Greater magnetization also weakens the lump and any modulation of the light output. We develop a model to describe how lump formation results from internal stress degrading faster in the lump region than it can be rejuvenated through accretion inflow, and predicts a threshold value in specific internal stress below which lump formation should occur and which all our lump-forming simulations satisfy. Thus, detection of such a modulation would provide a constraint on both mass ratio and magnetic flux piercing the accretion flow.
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We develop a model to describe how lump formation results from internal stress degrading faster in the lump region than it can be rejuvenated through accretion inflow, and predicts a threshold value in specific internal stress below which lump formation should occur and which all our lump-forming simulations satisfy. 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subjects Accretion
Accretion disks
Active galactic nuclei
Astrophysical black holes
Astrophysics
Black hole physics
Black holes
Density distribution
Fluctuations
Gravitational waves
High energy astrophysics
Magnetic flux
Magnetism
Magnetohydrodynamics
Modulation
Radiation
Relativistic disks
Residual stress
Skewed distributions
Supermassive black holes
title Mass-ratio and Magnetic Flux Dependence of Modulated Accretion from Circumbinary Disks
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