Global Three-Dimensional Radiation Magnetohydrodynamic Simulations of Accretion onto a Stellar Mass Black Hole at Sub- and Near-critical Accretion Rates
arXiv:2301.12679 · doi:10.3847/1538-4357/acb6fc
Abstract
We present global 3D radiation magnetohydrodynamical simulations of accretion onto a 6.62 solar mass black hole with quasi-steady state accretion rates reaching 0.016 to 0.9 times the critical accretion rate, which is defined as the accretion rate to power the Eddington luminosity assuming a 10% radiative efficiency, in different runs. The simulations show no sign of thermal instability over hundreds of thermal timescales at 10 . The energy dissipation happens close to the mid-plane in the near-critical runs and near the disk surface in the low accretion rate run. The total radiative luminosity inside 20 is about 1% to 30% the Eddington limit, with a radiative efficiency of about 6% and 3%, respectively, in the sub- and near-critical accretion regimes. In both cases, self-consistent turbulence generated by the magnetorotational instability (MRI) leads to angular momentum transfer, and the disk is supported by magnetic pressure. Outflows from the central low-density funnel with a terminal velocity of 0.1 are seen only in the near-critical runs. We conclude that these magnetic pressure dominated disks are thermally stable and thicker than the disk, and the effective temperature profiles are much flatter than that in the disks. The magnetic pressure of these disks are comparable within an order of magnitude with the previous analytical magnetic pressure dominated disk model.
17 pages, 13 figures, 3 tables, accepted for publication in ApJ
References in corpus (14)
- X-ray Properties of Black-Hole Binaries
- Modelling the behaviour of accretion flows in X-ray binaries
- Super-critically accreting stellar-mass black holes as ultraluminous X-ray sources
- A Global Three Dimensional Radiation Magneto-hydrodynamic Simulation of Super-Eddington Accretion Disks
- Global simulations of axisymmetric radiative black hole accretion disks in general relativity with a sub-grid magnetic dynamo
- Three-Dimensional Simulations of Magnetized Thin Accretion Disks around Black Holes: Stress in the Plunging Region
- Accretion Discs with Strong Toroidal Magnetic Fields
- Magnetohydrodynamic Simulations of Active Galactic Nucleus Disks and Jets
- Numerical Simulations of Optically Thick Accretion onto a Black Hole - II. Rotating Flow
- An Implicit Finite Volume Scheme to Solve the Time Dependent Radiation Transport Equation Based on Discrete Ordinates
- Ionised Emission and Absorption in a Large Sample of Ultraluminous X-ray Sources
- Radiation hydrodynamics simulations of wide-angle outflows from super-critical accretion disks around black holes
- Instability in strongly magnetized accretion discs: A global perspective
- Theoretical modeling of Comptonized X-ray spectra of super-Eddington accretion flow: origin of hard excess in Ultraluminous X-Ray Sources