General Relativistic Hydrodynamic Simulation of Accretion Flow from a Stellar Tidal Disruption
arXiv:1501.04365 · doi:10.1088/0004-637X/804/2/85
Abstract
We study how the matter dispersed when a supermassive black hole tidally disrupts a star joins an accretion flow. Combining a relativistic hydrodynamic simulation of the stellar disruption with a relativistic hydrodynamics simulation of the tidal debris motion, we track such a system until ~80% of the stellar mass bound to the black hole has settled into an accretion flow. Shocks near the stellar pericenter and also near the apocenter of the most tightly-bound debris dissipate orbital energy, but only enough to make the characteristic radius comparable to the semi-major axis of the most-bound material, not the tidal radius as previously thought. The outer shocks are caused by post-Newtonian effects, both on the stellar orbit during its disruption and on the tidal forces. Accumulation of mass into the accretion flow is non-monotonic and slow, requiring ~3--10x the orbital period of the most tightly-bound tidal streams, while the inflow time for most of the mass may be comparable to or longer than the mass accumulation time. Deflection by shocks does, however, remove enough angular momentum and energy from some mass for it to move inward even before most of the mass is accumulated into the accretion flow. Although the accretion rate rises sharply and then decays roughly as a power-law, its maximum is ~0.1x the previous expectation, and the duration of the peak is ~5x longer than previously predicted. The geometric mean of the black hole mass and stellar mass inferred from a measured event timescale is therefore ~0.2x the value given by classical theory.
References in corpus (7)
- A Continuum of H- to He-Rich Tidal Disruption Candidates With a Preference for E+A Galaxies
- A Global Three Dimensional Radiation Magneto-hydrodynamic Simulation of Super-Eddington Accretion Disks
- Stellar disruption by a supermassive black hole: is the light curve really proportional to ?
- Measurement of the rate of stellar tidal disruption flares
- Illuminating Massive Black Holes With White Dwarfs: Orbital Dynamics and High Energy Transients from Tidal Interactions
- Shock waves in tidally compressed stars by massive black holes
- Tidal disruption of a star in the Schwarzschild spacetime: relativistic effects in the return rate of debris
Cited by in corpus (14)
- The Superluminous Transient ASASSN-15lh as a Tidal Disruption Event from a Kerr Black Hole
- Black hole masses of tidal disruption event host galaxies
- X-ray Brightening and UV Fading of Tidal Disruption Event ASASSN-15oi
- A likely decade-long sustained tidal disruption event
- Long-term stream evolution in tidal disruption events
- Disk Winds as an Explanation for Slowly Evolving Temperatures in Tidal Disruption Events
- Tidal disruption events from supermassive black hole binaries
- The Long Term Evolution of ASASSN-14li
- Disk origin of broad optical emission lines of the TDE candidate PTF09djl
- Are Ultra-Long Gamma-Ray Bursts Caused by Blue Supergiant Collapsars, Newborn Magnetars, or White Dwarf Tidal Disruption Events?
- Optical/UV-to-X-Ray Echoes from the Tidal Disruption Flare ASASSN-14li
- A decades-long fast-rise-exponential-decay flare in low-luminosity AGN NGC 7213
- Ultra-deep tidal disruption events: prompt self-intersections and observables
- Radiative interaction between the relativistic jet and optically thick envelope in tidal disruption events