急流潮汐破坏事件swift j1644 +57的射电余辉

B. Metzger, D. Giannios, P. Mimica
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引用次数: 0

摘要

最近发生的短暂事件Swift J1644+57被解释为由一颗被潮汐破坏的恒星吸积到一个超大质量黑洞所产生的相对论性流出。这类新的相对论瞬态的发现为潮汐破坏事件(TDEs)的研究打开了新的窗口,并提供了对相对论性射流形成的物理和遥远静止星系中心条件的独特探索。与Swift J1644+57快速变化的γ/ x射线发射不同,射电发射变化更慢,并且可以很好地模拟为射流和气态环核介质(CNM)之间激波相互作用产生的同步辐射。在喷射开始后的早期,在活动的最初几天里,反向冲击传播并减速释放的喷出物,而在较晚的时间里,流出物接近布兰福德和麦基的自相似进化。在t≈10天的射电光曲线上,反向激波完全穿过最早喷出物的点被清楚地观测到为消色差断裂。余辉的通量和断裂频率限制了射流和CNM的特性,包括为窄准直射流提供了强有力的证据。我简要地讨论了Swift J1644+57对伴随相对论性喷流的tde的影响;更广泛的射流形成物理学;以及探测离轴TDE射电发射的前景,要么通过对其他波长发现的TDE候选者的后续观测,要么通过即将到来的宽视场射电调查盲目地进行探测。在喷流开始几个月后观测到的射电再亮仍然是一个主要的未解之谜,解决这个问题可能需要考虑具有更复杂(时间或角度)结构的喷流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
RADIO AFTERGLOW OF THE JETTED TIDAL DISRUPTION EVENT SWIFT J1644+57
The recent transient event Swift J1644+57 has been interpreted as resulting from a relativistic outflow, powered by the accretion of a tidally disrupted star onto a supermassive black hole. This discovery of a new class of relativistic transients opens new windows into the study of tidal disruption events (TDEs) and offers a unique probe of the physics of relativistic jet formation and the conditions in the centers of distant quiescent galaxies. Unlike the rapidly-varying γ/X-ray emission from Swift J1644+57, the radio emission varies more slowly and is well modeled as synchrotron radiation from the shock interaction between the jet and the gaseous circumnuclear medium (CNM). Early after the onset of the jet, a reverse shock propagates through and decelerates the ejecta released during the first few days of activity, while at much later times the outflow approaches the self-similar evolution of Blandford and McKee. The point at which the reverse shock entirely crosses the earliest ejecta is clearly observed as an achromatic break in the radio light curve at t ≈ 10 days. The flux and break frequencies of the afterglow constrain the properties of the jet and the CNM, including providing robust evidence for a narrowly collimated jet. I briefly discuss the implications of Swift J1644+57 for the fraction of TDEs accompanied by relativistic jets; the physics of jet formation more broadly; and the prospects for detecting off-axis TDE radio emission, either via follow-up observations of TDE candidates discovered at other wavelengths or blindly with upcoming wide-field radio surveys. The radio rebrightening observed months after the onset of the jet remains a major unsolved mystery, the resolution of which may require considering a jet with more complex (temporal or angular) structure.
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