Tidal Disruption Flares: The Accretion Disk Phase
arXiv:1105.2060 · doi:10.1088/0004-637X/736/2/126
Abstract
The evolution of an accretion disk, formed as a consequence of the disruption of a star by a black hole, is followed by solving numerically the hydrodynamic equations. The present investigation aims to study the dependence of resulting light curves on dynamical and physical properties of such a transient disk during its existence. One of main results derived from our simulations is that black body fits of X-ray data tend to overestimate the true mean disk temperature. The temperature derived from black body fits should be identified with the color X-ray temperature rather than the average value derived from the true temperature distribution along the disk. The time interval between the beginning of the circularization of the bound debris and the beginning of the accretion process by the black hole is determined by the viscous timescale, which fixes also the raising part of the resulting light curve. The luminosity peak coincides with the beginning of matter accretion by the black hole and the late evolution of the light curve depends on the evolution of the debris fallback rate. Peak bolometric luminosities are in the range 10^45-10^46 erg s^-1 whereas peak luminosities in soft X-rays (0.2-2.0 keV) are typically one order of magnitude lower. The timescale derived from our preferred models for the flare luminosity to decay by two orders of magnitude is about 3-4 years. Predicted soft X-ray light curves were fitted to data on galaxies in which a variable X-ray emission, related to tidal events, was detected.
14 pages, 11 figures, Accepted for publication in ApJ
References in corpus (10)
- The Palomar Transient Factory: System Overview, Performance and First Results
- Optical Flares from the Tidal Disruption of Stars by Massive Black Holes
- Stellar disruption by a supermassive black hole: is the light curve really proportional to ?
- Luminous Thermal Flares from Quiescent Supermassive Black Holes
- Evolution of tidal disruption candidates discovered by XMM-Newton
- Candidate tidal disruption events from the XMM-Newton Slew Survey
- A Tidal Disruption Flare in Abell 1689 from an Archival X-ray Survey of Galaxy Clusters
- A candidate tidal disruption event in the Galaxy cluster Abell 3571
- On the Eddington limit in accretion discs
- The growth of supermassive black holes fed by accretion disks
Cited by in corpus (17)
- Consequences of Strong Compression in Tidal Disruption Events
- The Tidal Disruption of Giant Stars and Their Contribution to the Flaring Supermassive Black Hole Population
- Observing Lense-Thirring Precession in Tidal Disruption Flares
- Extreme Coronal Line Emitters: Tidal Disruption of Stars by Massive Black Holes in Galactic Nuclei?
- Evolution of Accretion Disks in Tidal Disruption Events
- Spoon-Feeding Giant Stars to Supermassive Black Holes: Episodic Mass Transfer from Evolving Stars and Their Contribution to the Quiescent Activity of Galactic Nuclei
- Late Time Radio Emission from X-ray Selected Tidal Disruption Events
- Tidal Disruption Event Disks around Supermassive Black Holes: Disk Warp and Inclination Evolution
- Stellar and gas dynamical model for tidal disruption events in a quiescent galaxy
- A decades-long fast-rise-exponential-decay flare in low-luminosity AGN NGC 7213
- PS1-10jh - a tidal disruption event with an extremely low disk temperature
- The Secular Periodic Evolution of X-ray Quasi-periodic Eruptions Driven by Star-disc Collisions
- Relativistic accretion disc in tidal disruption events
- Dynamics of accretion and winds in tidal disruption events
- Tidal disruption events as a site of an evolving relativistic spectral~line
- Advective accretion disc-corona model with fallback for tidal disruption events
- Observational Signatures of Planetary Tidal Disruption Events Around Solar-Mass Stars