$\textit{BMAD}$-Circumbinary Magnetically Arrested Disks around Stellar or Black Hole Binaries: Hot Accretion Flows, Disk Properties, and Angular Momentum Transfer
Hai-Yang Wang, Elias R. Most, Philip F. Hopkins

TL;DR
This paper investigates magnetically arrested circumbinary disks around stellar or black hole binaries, revealing how strong magnetic fields influence accretion flows, outflows, and binary orbital evolution through advanced simulations.
Contribution
It provides the first comprehensive simulation-based analysis of BMAD states, exploring their properties, dependence on physics parameters, and impact on binary orbital dynamics.
Findings
Magnetically arrested accretion flows are achievable with strong initial magnetic fields.
Flow and flux properties depend on the equation of state and cooling physics.
BMAD states can potentially facilitate binary orbit shrinking during flux eruptions.
Abstract
Binary systems surrounded by a circumbinary accretion flow can be subject to strong magnetic fields, potentially altering the character of the accretion flow itself, the evolution of the orbital dynamics, and outflow properties from the system. Here we focus on a regime where magnetic fields become so strong that the outer circumbinary flow becomes magnetically arrested, establishing a (circum)binary magnetically arrested disk () state. Such flows feature quasi-periodic magnetic flux eruptions, power jet-like magnetic tower outflows, and consequently alter the predominant contribution to angular momentum transfer inside the circumbinary disk. In this work, we provide a comprehensive analysis of the properties of these flows around equal-mass binary systems on circular orbits ultilizing massively parallel three-dimensional Newtonian magnetohydrodynamics simulations. We…
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