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Interaction of an outflow with surrounding gaseous clouds as the origin of the late-time radio flares in TDEs
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abstract
Close encounter between a star and a supermassive black hole (SMBH) results in the tidal disruption of the star, known as a tidal disruption event (TDE). Recently, a few TDEs, e.g., ASASSN-15oi and AT2018hyz, have shown late-time (hundreds of days after their UV/optical peaks) radio flares with radio luminosities of $10^{38\sim39}$ erg/s. The super-Eddington fallback or accretion in a TDE may generate a mass outflow. Here we investigate a scenario that the late-time radio flares come from the interaction of the outflow with the circum-nuclear gaseous clouds, in addition to the slow-evolving emission component due to the outflow-diffuse medium interaction. We calculate the associated radio temporal and spectral signatures and find that they reproduce well the observations. The outflows have the inferred velocity of 0.2$c\sim0.6$$c$, the total mass of $10^{-3}\sim10^{-1}$ $\mathrm{M_{\odot}}$ and the ejection duration of a month to a year. The distances of the clouds to the SMBH are $0.1\sim1$ pc. This scenario has advantages in explaining the long delay, sharpness of the rise and the multiplicity of the late radio flares. Future observations may build up a much larger sample of late-time radio flares and enable their use as a probe of the TDE physics and the host circumnuclear environment.
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Cited by 4 Pith papers
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Triple radio flares from tidal disruption events: jet-wind collisions and the discovery of a third radio flare from AT2020vwl
The TDE AT2020vwl showed a third radio flare at the time a jet-wind collision was predicted from its first two flares, the first predicted-and-confirmed third flare.
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Radio emission from tidal disruption events produced by the collision between super-Eddington outflows and the circumnuclear medium
Simulated tidal disruption outflows crashing into surrounding gas produce radio emission matching several observed TDE radio flares.
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Discovery of a years-delayed radio flare from an unusually slow-evolved tidal disruption event
SDSS J1115+0544, once thought to be a changing-look AGN, is now found to be a slow tidal disruption event with a radio flare delayed by about three years.
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Late-time Evolution and Instabilities of Tidal Disruption Disks
A semi-analytic model predicts that TDE debris disks undergo repeated thermal-instability accretion cycles for up to about ten years, driving super-Eddington outflows and late-time optical/UV emission.
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