On the convective instability of hot radiative accretion flows
arXiv:1001.3571 · doi:10.1111/j.1365-2966.2010.17175.x
Abstract
How many fraction of gas available at the outer boundary can finally fall onto the black hole is an important question. It determines the observational appearance of accretion flows, and is also related with the evolution of black hole mass and spin. Previous two-dimensional hydrodynamical simulations of hot accretion flows find that the flow is convectively unstable because of its inward increase of entropy. As a result, the mass accretion rate decreases inward, i.e., only a small fraction of accretion gas can fall onto the black hole, while the rest circulates in the convective eddies or lost in convective outflows. Radiation is usually neglected in these simulations. In many cases, however, radiative cooling is important. In the regime of the luminous hot accretion flow (LHAF), radiative cooling is even stronger than the viscous dissipation. In the one dimensional case, this implies that the inward increase of entropy will become slower or the entropy even decreases inward in the case of an LHAF. We therefore expect that convective instability becomes weaker or completely disappears when radiative cooling is important. To examine the validity of this expectation, in this paper we perform two-dimensional hydrodynamical simulations of hot accretion flows with strong radiative cooling. We find that compared to the case of negligible radiation, convection only becomes slightly weaker. Even an LHAF is still strongly convectively unstable, its radial profile of accretion rate correspondingly changes little. We find the reason is that the entropy still increases inward in the two-dimensional case.
moderately revised, one figure added; 11 pages, 10 figures; accepted by MNRAS
References in corpus (6)
- Advection-Dominated Accretion and the Black Hole Event Horizon
- An Unambiguous Detection of Faraday Rotation in Sagittarius A*
- The Influence of Magnetic Field Geometry on the Evolution of Black Hole Accretion Flows: Similar Disks, Drastically Different Jets
- Hot Accretion With Conduction: Spontaneous Thermal Outflows
- Global Compton heating and cooling in hot accretion flows
- Monte Carlo simulations of global Compton cooling in inner regions of hot accretion flows
Cited by in corpus (34)
- Hot Accretion Flows Around Black Holes
- Numerical Simulation of Hot Accretion Flows (II): Nature, Origin, and Properties of Outflow and Their Possible Observational Applications
- Numerical Simulation of Hot Accretion Flows (I): A Large Radial Dynamical Range and the Density Profile of Accretion Flow
- The Radiative Efficiency of Hot Accretion Flows
- Inside the Bondi radius of M87
- Radiatively Inefficient Accretion: Breezes, Winds and Hyperaccretion
- Rotating Accretion Flows: From Infinity to the Black Hole
- Variability Timescale and Spectral Index of Sgr A* in the Near Infrared: Approximate Bayesian Computation Analysis of the Variability of the Closest Supermassive Black Hole
- Hydrodynamical numerical simulation of wind production from black hole hot accretion flows at very large radii
- Mechanism of Outflows in Accretion System: Advective Cooling Cannot Balance Viscous Heating?
- On the structure of Accretion Disks with Outflows
- On the Origin of Ultraviolet Emission and the Accretion Model of Low-luminosity AGNs
- Two dimensional numerical simulations of Supercritical Accretion Flows revisited
- Magneto-hydrodynamical Numerical simulation of wind production from black hole hot accretion flows at very large radii
- On the role of initial and boundary conditions in numerical simulations of accretion flows
- The imprints of AGN feedback within a supermassive black hole's sphere of influence
- Possible Origin of Radio Emission from Nonthermal Electrons in Hot Accretion Flows for Low-Luminosity Active Galactic Nuclei
- Hot accretion flow with radiative cooling: state transitions in black hole X-ray binaries
- Structure of Advection-Dominated Accretion Disks with Outflows: Role of Toroidal Magnetic Field
- The Dynamics of Truncated Black Hole Accretion Disks II: Magnetohydrodynamic Case
- On the wind production from hot accretion flows with different accretion rates
- Magnetothermal and magnetorotational instabilities in hot accretion flows
- Comparison between RHD simulation of supercritical accretion flows and steady model with outflows
- Probing within the Bondi radius of the ultramassive black hole in NGC 1600
- Whispering in the dark: Faint X-ray emission from black holes with OB star companions
- The Dynamics of Truncated Black Hole Accretion Disks I: Viscous, Hydrodynamic Case
- The effects of toroidal magnetic field on the vertical structure of hot accretion flows
- Structure of ADAFs in a general large-Scale B-field: The role of wind and thermal conduction
- Vertical structure of Advection dominated Accretion Flows
- Hot accretion flow around neutron stars
- Modeling the Spectrum of IGR J17177-3656
- Hydrodynamical wind on magnetized Accretion Flows with Convection
- Self-similar Solution of Hot Accretion Flow with Thermal Conduction and Anisotropic Pressure
- Self-similar solution of hot accretion flow: the role of kinematic viscosity coefficient