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Circumbinary Disk Accretion into Spinning Black Hole Binaries Supermassive black hole binaries are likely to accrete interstellar gas through a circumbinary disk. Shortly before merger, the inner portions of this circumbinary disk are subject to general relativistic effects. To study this regime, we approximate the spacetime metric of close orbiting black holes by superimposing two boosted Kerr–Schild terms. After demonstrating the quality of this approximation, we carry out very long-term general relativistic magnetohydrodynamic simulations of the circumbinary disk. We consider black holes with spin dimensionless parameters of magnitude 0.9, in one simulation parallel to the orbital angular momentum of the binary, but in another anti-parallel. These are contrasted with spinless simulations. We find that, for a fixed surface mass density in the inner circumbinary disk, aligned spins of this magnitude approximately reduce the mass accretion rate by 14% and counter-aligned spins increase it by 45%, leaving many other disk properties unchanged.
Document ID
20210016224
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Federico G. Lopez Armengol ORCID
(Rochester Institute of Technology Rochester, New York, United States)
Luciano Combi ORCID
(Rochester Institute of Technology Rochester, New York, United States)
Manuela Campanelli ORCID
(Rochester Institute of Technology Rochester, New York, United States)
Scott C. Noble ORCID
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Julian H. Krolik ORCID
(Johns Hopkins University Baltimore, Maryland, United States)
Dennis B. Bowen ORCID
(Los Alamos National Laboratory Los Alamos, New Mexico, United States)
Mark J. Avara ORCID
(University of Cambridge Cambridge, United Kingdom)
Vassilios Mewes ORCID
(Rochester Institute of Technology Rochester, New York, United States)
Hiroyuki Nakano ORCID
(Ryukoku University Kyoto, Japan)
Date Acquired
May 24, 2021
Publication Date
May 19, 2021
Publication Information
Publication: The Astrophysical Journal
Publisher: American Astronomical Society / IOP Publishing
Volume: 913
Issue: 1
Issue Publication Date: May 20, 2021
ISSN: 0004-637X
e-ISSN: 1538-4357
Subject Category
Astrophysics
Astronomy
Funding Number(s)
WBS: 244904.04.09.05.04.03
CONTRACT_GRANT: 80NSSC18K1488
CONTRACT_GRANT: PHY-1607520
CONTRACT_GRANT: PHY-1305730
CONTRACT_GRANT: AST-2009330
CONTRACT_GRANT: AST-1028087
CONTRACT_GRANT: AST-1516150
CONTRACT_GRANT: AST- 1515982
CONTRACT_GRANT: OAC-1515969
CONTRACT_GRANT: DE-89233218CNA000001
CONTRACT_GRANT: OAC- 1550436
PROJECT: 17-SC-20-SC
CONTRACT_GRANT: DE-AC05-00OR22725
CONTRACT_GRANT: JP16K05347
CONTRACT_GRANT: JP17H06358
CONTRACT_GRANT: PHYS- 707826
CONTRACT_GRANT: AST-AST-2009260
CONTRACT_GRANT: OAC-1811228
CONTRACT_GRANT: OAC-1516125
CONTRACT_GRANT: PHY-0722703
CONTRACT_GRANT: PHY- 1229173
CONTRACT_GRANT: PHY-1726215
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
AGN
Supermassive binary black hole
GRMHD
Gravitational Waves
Multi-messenger Astrophysics
LISA
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