Elliptical accretion and inefficient highly eccentric accretion and the low luminosity of stellar tidal disruption events
arXiv:1508.02389 · doi:10.1093/mnras/stx117
Abstract
Models for tidal disruption events (TDEs) in which a supermassive black hole disrupts a star commonly assume that the highly eccentric streams of bound stellar debris promptly form a circular accretion disk at the pericenter scale. However, recent numerical simulations (Shiokawa et al., 2015) demonstrated that dissipation via hydrodynamical shocks is insufficient to circularize debris, and the flow retains its initial semi-major axis scale throughout the first ~10 orbits of the event. The bolometric peak luminosity of most TDE candidates, a few x 10^{44} erg/s, implies that we observe only ~1% of the energy expected from radiatively efficient accretion. Motivated by these results, (Piran et al., 2015) suggested that the observed optical TDE emission is powered by shocks at the apocenter between freshly infalling material and earlier arriving matter. This model explains the small radiated energy, the low temperature, and the large radius implied by the observations as well as the t^{-5/3} light curve. However the question of the system's low {bolometric} efficiency remains unanswered. We suggest that the high orbital energy and low angular momentum of the flow make it possible for magnetic stresses to reduce the matter's already small angular momentum to the point at which it can fall ballistically into the SMBH before circularization. As a result, the efficiency is only ~1--10% of a standard accretion disk's efficiency. Thus, the intrinsically high eccentricity of the tidal debris naturally explains why most TDE candidates are fainter than expected.
8 pages, Accepted for publication in MNRAS
References in corpus (14)
- Super-critically accreting stellar-mass black holes as ultraluminous X-ray sources
- An ultraviolet-optical flare from the tidal disruption of a helium-rich stellar core
- A Continuum of H- to He-Rich Tidal Disruption Candidates With a Preference for E+A Galaxies
- Stellar disruption by a supermassive black hole: is the light curve really proportional to ?
- Six Months of Multi-Wavelength Follow-up of the Tidal Disruption Candidate ASASSN-14li and Implied TDE Rates from ASAS-SN
- General Relativistic Hydrodynamic Simulation of Accretion Flow from a Stellar Tidal Disruption
- A Bright Year for Tidal Disruptions?
- Disc formation from tidal disruptions of stars on eccentric orbits by Schwarzschild black holes
- Flows of X-ray gas reveal the disruption of a star by a massive black hole
- ASASSN-15oi: A Rapidly Evolving, Luminous Tidal Disruption Event at 216 Mpc
- ASASSN-14li: A Model Tidal Disruption Event
- Magnetohydrodynamical simulations of a tidal disruption in general relativity
- Disk Winds as an Explanation for Slowly Evolving Temperatures in Tidal Disruption Events
- Hello Darkness My Old Friend: The Fading of the Nearby TDE ASASSN-14ae
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- Eccentric Tidal Disruption Event Disks around Supermassive Black Holes: Dynamics and Thermal Emission
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- Limits on mass outflow from optical tidal disruption events
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- Spectral features of tidal-disruption candidates and alternative origins for such transient flares
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- Tidal Disruption Flares from Stars on Marginally Bound and Unbound Orbits
- Elliptical accretion disk as a model for tidal disruption events
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- Misaligned jets from Sgr A and the origin of Fermi/eROSITA bubbles
- Extremely Relativistic Tidal Disruption Events
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- Nonlinear evolution of the magnetorotational instability in eccentric disks
- The effect of relativistic precession on light curves of tidal disruption events
- Three-dimensional simulations of the magnetorotational instability in eccentric disks
- The Impact of Shocks on the Vertical Structure of Eccentric Disks
- An Analytic, Fully Relativistic Framework for Tidal Disruption Event Streams in Schwarzschild Geometry
- On the origin of late-time X-ray flares in UV/optically-selected tidal disruption events