Modeling quasar accretion disc temperature profiles
arXiv:1308.6010 · doi:10.1093/mnras/stu890
Abstract
Microlensing observations indicate that quasar accretion discs have half-light radii larger than expected from standard theoretical predictions based on quasar fluxes or black hole masses. Blackburne and colleagues have also found a very weak wavelength dependence of these half-light radii. We consider disc temperature profile models that might match these observations. Nixon and colleagues have suggested that misaligned accretion discs around spinning black holes will be disrupted at radii small enough for the Lense-Thirring torque to overcome the disc's viscous torque. Gas in precessing annuli torn off a disc will spread radially and intersect with the remaining disc, heating the disc at potentially large radii. However, if the intersection occurs at an angle of more than a degree or so, highly supersonic collisions will shock-heat the gas to a Compton temperature of T~10^7 K, and the spectral energy distributions (SEDs) of discs with such shock-heated regions are poor fits to observations of quasar SEDs. Torn discs where heating occurs in intermittent weak shocks that occur whenever the intersection angle reaches a tenth of a degree pose less of a conflict with observations, but do not have significantly larger half-light radii than standard discs. We also study two phenomenological disc temperature profile models. We find that discs with a temperature spike at relatively large radii and lowered temperatures at radii inside the spike yield improved and acceptable fits to microlensing sizes in most cases. Such temperature profiles could in principle occur in sub-Keplerian discs partially supported by magnetic pressure. However, such discs overpredict the fluxes from quasars studied with microlensing except in the limit of negligible continuum emission from radii inside the temperature spike.
Submitted to MNRAS. Comments welcome. 20 pages, 5 figures
References in corpus (16)
- The ultraluminous state revisited: fractional variability and spectral shape as diagnostics of super-Eddington accretion
- Sizes and Temperature Profiles of Quasar Accretion Disks from Chromatic Microlensing
- Quasar Accretion Disks Are Strongly Inhomogeneous
- Fuelling Active Galactic Nuclei
- The Spatial Structure of An Accretion Disk
- Microlensing variability in the gravitationally lensed quasar QSO 2237+0305 = the Einstein Cross. II. Energy profile of the accretion disk
- X-Ray and Optical Microlensing in the Lensed Quasar PG 1115+080
- Line driven winds and the UV turnover in AGN accretion discs
- A microlensing study of the accretion disc in the quasar MG 0414+0534
- Gravitational Microlensing
- The Average Size and Temperature Profile of Quasar Accretion Disks
- Dynamics of warped accretion discs
- A Study of Gravitational Lens Chromaticity using Ground-based Narrow Band Photometry
- A physical model for state transitions in black hole X-ray binaries
- Microlensing of an extended source by a power-law mass distribution
- Physical Properties of the Inner Shocks in Hot, Tilted Black Hole Accretion Flows
Cited by in corpus (7)
- Disc tearing: implications for black hole accretion and AGN variability
- Non-Blackbody Disks Can Help Explain Inferred AGN Accretion Disk Sizes
- Multi-Epoch Observations of Extremely High-Velocity Emergent Broad Absorption
- Deep modeling of quasar variability
- Quasar Microlensing Variability Studies Favor Shallow Accretion Disk Temperature Profiles
- Constraints on accretion disk size in the massive type 1 quasar PG 2308+098 from optical continuum reverberation lags
- Evidence for two spatially separated UV continuum emitting regions in the Cloverleaf broad absorption line quasar