On the stability of thick accretion disks around black holes
arXiv:astro-ph/0211102 · doi:10.1086/345942
Abstract
Discerning the likelihood of the so-called runaway instability of thick accretion disks orbiting black holes is an important issue for most models of cosmic gamma-ray bursts. To this aim we investigate this phenomenon by means of time-dependent, hydrodynamical simulations of black hole plus torus systems in general relativity. The evolution of the central black hole is assumed to be that of a sequence of Kerr black holes of increasing mass and spin, whose growth rate is controlled by the transfer of mass and angular momentum from the material of the disk spiralling in through the event horizon of the black hole. The self-gravity of the disk is neglected. We find that when the black hole mass and spin are allowed to increase, constant angular momentum disks undergo a runaway instability on a dynamical timescale (a few orbital periods). However, our simulations show that a slight increase of the specific angular momentum of the disk outwards has a dramatic stabilizing effect. Our results, obtained in the framework of general relativity, are in broad agreement with earlier studies based both on stationary models and on time-dependent simulations with Newtonian and pseudo-Newtonian gravitational potentials.
12 pages, 3 figures, accepted for publication in ApJL
Cited by in corpus (33)
- The Current Ability to Test Theories of Gravity with Black Hole Shadows
- Accurate evolutions of unequal-mass neutron-star binaries: properties of the torus and short GRB engines
- Oscillations of vertically integrated relativistic tori -- I. Axisymmetric modes in a Schwarzschild spacetime
- BlackHoleCam: fundamental physics of the Galactic center
- Quasi-periodic accretion and gravitational waves from oscillating "toroidal neutron stars" around a Schwarzschild black hole
- Equatorial circular orbits in the Kerr-de Sitter spacetimes
- Dynamics of oscillating relativistic tori around Kerr black holes
- State-of-the-art energetic and morphological modelling of the launching site of the M87 jet
- The runaway instability of thick discs around black holes. II. Non constant angular momentum discs
- Dynamics of thick discs around Schwarzschild-de Sitter black holes
- Stability of general-relativistic accretion disks
- EM counterparts of recoiling black holes: general relativistic simulations of non-Keplerian discs
- Oscillations of vertically integrated relativistic tori -II. Axisymmetric modes in a Kerr spacetime
- Gravitating discs around black holes
- The runaway instability in general relativistic accretion disks
- Ringed accretion disks: equilibrium configurations
- Accretion-driven gravitational radiation from nonrotating compact objects. Infalling quadrupolar shells
- Ringed accretion disks: instabilities
- Ringed accretion disks: evolution of double toroidal configurations
- Relativistic thick accretion disks: morphology and evolutionary parameters
- Probing spacetime and accretion model for the Galactic Center: Comparison of Kerr and dilaton black hole shadows
- RADs energetics and constraints on emerging tori collisions around super-massive Kerr Black Holes
- Relating Kerr SMBHs in Active Galactic Nuclei to RAD configurations
- Dark matter effect on black hole accretion disks
- Effect of the toroidal magnetic field on the runaway instability of relativistic tori
- Simulations of recoiling black holes: adaptive mesh refinement and radiative transfer
- Limiting effects in clusters of misaligned toroids orbiting static SMBHs
- Embedded BHs and multipole globules: Clustered misaligned thick accretion disks around static SMBHs
- On photons and matter inversion spheres from complex super-spinars accretion structures
- Isothermal Plasma Wave Properties of the Schwarzschild de-Sitter Black Hole in a Veselago Medium
- Modeling the shadow of Sgr A* through an eclipsing black hole
- Impact of non-thermal particles on the spectral and structural properties of M87
- Nonthermal hotspot orbiting the supermassive black hole Sgr A*