Effects of Compton Cooling on the Hydrodynamic and the Spectral Properties of a Two Component Accretion Flow around a Black Hole
arXiv:1105.4245 · doi:10.1111/j.1365-2966.2011.19090.x
Abstract
We carry out a time dependent numerical simulation where both the hydrodynamics and the radiative transfer are coupled together. We consider a two-component accretion flow in which the Keplerian disk is immersed inside an accreting low angular momentum flow (halo) around a black hole. The injected soft photons from the Keplerian disk are reprocessed by the electrons in the halo. We show that in presence of an axisymmetric soft-photon source, the spherically symmetric Bondi flow losses its symmetry and becomes axisymmetric. The low angular momentum flow was observed to slow down close to the axis and formed a centrifugal barrier which added new features into the spectrum. Using the Monte Carlo method, we generated the radiated spectra as functions of the accretion rates. We find that the transitions from a hard state to a soft state is determined by the mass accretion rates of the disk and the halo. We separate out the signature of the bulk motion Comptonization and discuss its significance. We study how the net spectrum is contributed by photons suffering different number of scatterings and spending different amounts of time inside the Compton cloud. We study the directional dependence of the emitted spectrum as well.
20 pages, 14 figures, Accepted for publication in MNRAS
References in corpus (7)
- Dynamics of Accretion Flows Irradiated by a Quasar
- The effect of cooling on time dependent behaviour of accretion flows around black holes
- Dynamics of Rotating Accretion Flows Irradiated by a Quasar
- INTEGRAL and RXTE monitoring of GRS 1758-258 in 2003 and 2004. A transition from the dim soft state to the hard state
- Hydrodynamic Simulations of Oscillating Shock Waves in a Sub-Keplerian Accretion Flow Around Black Holes
- Monte-Carlo Simulations of Thermal Comptonization Process in a Two Component Accretion Flow Around a Black Hole
- Monte-Carlo Simulations of Thermal Comptonization Process in a Two Component Accretion Flow Around a Black Hole in presence of an Outflow
Cited by in corpus (17)
- Monte Carlo Radiation Hydrodynamics with Implicit Methods
- The 2004 Outburst of BHC H1743-322: Analysis of spectral and timing properties using the TCAF Solution
- Accretion Flow Dynamics of MAXI J1659-152 from the Spectral Evolution Study of its 2010 Outburst using the TCAF Solution
- Quasi Periodic Oscillations in a Radiative Transonic Flow: Results of a Coupled Monte Carlo-TVD Simulation
- Effects of Compton Cooling on Outflow in a Two Component Accretion Flow around a Black Hole: Results of a Coupled Monte Carlo-TVD Simulation
- The photon-index - time-lag correlation in black-hole X-ray binaries
- Temporal variability from the two-component advective flow solution and its observational evidence
- Long term X-Ray Observations of Seyfert 1 Galaxy Ark 120: On the origin of soft-excess
- A jet model for Galactic black-hole X-ray sources: the cutoff energy-phase-lag correlation
- Images and Spectral Properties of Two Component Advective Flows Around Black Holes: Effects of Photon Bending
- Inclination effects on the X-ray emission of Galactic black-hole binaries
- Temporal Evolution of Photon Energy emitted from Two Component Advective Flows: Origin of Time Lag
- On the origin of the hard X-ray tail in neutron-star X-ray binaries
- Evidence of Outflow Induced Soft Lags of Galactic Black Holes
- Evolution of Accretion Disc Geometry of GRS~1915+105 during its state as revealed by TCAF solution
- Images and Spectra of Time Dependent Two Component Advective Flow in Presence of Outflows
- Spherical accretion in giant elliptical galaxies: multi-transonicity, shocks, and implications on AGN feedback