Angular Momentum Transport in Thin Magnetically Arrested Disks
arXiv:1709.10113 · doi:10.1093/mnras/sty1184
Abstract
In accretion disks with large-scale ordered magnetic fields, the magnetorotational instability (MRI) is marginally suppressed, so other processes may drive angular momentum transport leading to accretion. Accretion could then be driven by large-scale magnetic fields via magnetic braking, but large-scale magnetic flux can build-up onto the black hole and within the disk leading to a magnetically-arrested disk (MAD). Such a MAD state is unstable to the magnetic Rayleigh-Taylor (RT) instability, which itself leads to vigorous turbulence and the emergence of low-density highly-magnetized bubbles. This instability was studied in a thin (ratio of half-height H to radius R, ) MAD simulation, where it has a more dramatic effect on the dynamics of the disk than for thicker disks. We find that the low-density bubbles created by the magnetic RT instability decrease the stress (leading to angular momentum transport) in the disk rather than increasing magnetic torques. Indeed, we find that the dominant component of the stress is due to turbulent magnetic fields, despite the suppression of the axisymmetric MRI and the dominant presence of large-scale magnetic fields. This suggests that the magnetic RT instability plays a significant role in driving angular momentum transport in MADs.
7 pages, 6 figures. Movies: https://youtu.be/Sfh9O6Nm5Cc https://youtu.be/74CuoWN2HjI
References in corpus (4)
- Accretion to Magnetized Stars through the Rayleigh-Taylor Instability: Global Three-Dimensional Simulations
- Magnetically Arrested Disks and Origin of Poynting Jets: Numerical Study
- The Magnetic Rayleigh-Taylor Instability in Three Dimensions
- Nonlinear Evolution of the Magnetohydrodynamic Rayleigh-Taylor Instability
Cited by in corpus (19)
- First Sagittarius A* Event Horizon Telescope Results. V. Testing Astrophysical Models of the Galactic Center Black Hole
- Flares in the Galactic center I: orbiting flux tubes in Magnetically Arrested Black Hole Accretion Disks
- What really makes an accretion disc MAD
- A Resolution Study of Magnetically Arrested Disks
- Jets, disc-winds and oscillations in general relativistic, magnetically driven flows around black hole
- The Jet-Disk Boundary Layer in Black Hole Accretion
- General Relativistic Radiation Magnetohydrodynamic Simulations of Thin Magnetically Arrested Disks
- Neutrino Emissions from Tidal Disruption Remnants
- Radiative Properties of Magnetically-Arrested Disks
- AGN Feeding and Feedback in M84: From Kiloparsec Scales to the Bondi Radius
- Are Low-Frequency Quasi-Periodic Oscillations seen in accretion flows the disk response to a jet instability?
- Winds and Disk Turbulence Exert Equal Torques on Thick Magnetically Arrested Disks
- Magnetic field transport in compact binaries
- Chaotic magnetic disconnections trigger flux eruptions in accretion flows channeled onto magnetically saturated Kerr black holes
- Spin of the M87 black hole
- Hot accretion flow around neutron stars
- Constraining X-ray emission of magnetically arrested disk (MAD) by radio-loud AGNs with extreme ultraviolet (EUV) deficit
- Three-dimensional GRMHD simulations of jet formation and propagation in self-gravitating collapsing stars
- PATOKA: Simulating Electromagnetic Observables of Black Hole Accretion