论文标题

超级 - 埃德丁顿潮汐破坏事件的模拟光曲线与斑马流

Simulated optical light curves of super-Eddington tidal disruption events with ZEBRA flows

论文作者

Eyles-Ferris, R. A. J., Starling, R. L. C., O'Brien, P. T., Nixon, C. J., Coughlin, Eric R.

论文摘要

我们使用零 - bernoulli积聚(Zebra)流量模型提出了超级埃德丁顿潮汐破坏事件(TDE)的模拟光学光曲线,该模型提出,在超级埃德丁顿阶段,椎间盘是Quasi-Spherical-Spherical-Spherical-Spherical Persiation Pressure Pressure主导,并伴随着强大的Jets的生产。我们构建了轴和离轴(相对于射流)观察者的光曲线,以解释喷射发射的各向异性性质。我们发现,在光学波长中,增生流的发射比射流产生的发射量更明亮,即使是从同步加速器自我compton中提升的。与观察到的喷射TDE Swift J2058.4+0516相比,我们发现斑马模型准确地捕获了积聚保持超级伊德丁顿的时间尺度,并重现了瞬态的亮度。但是,我们发现较早的光曲线的形状偏差,并且建模的斑马的半径和温度为$ \ sim2.7-4.1 $ $倍,$ \ sim1.4-2.3 $分别比观察到的大。我们建议这表明斑马膨胀比该模型当前所预测的更多,更快,并且我们讨论了对模型的可能扩展。这种改进,再加上即将进行的大规模调查中的有价值的新数据,可以帮助解决超级 - 埃德丁顿TDE的性质及其动力。

We present simulated optical light curves of super-Eddington tidal disruption events (TDEs) using the zero-Bernoulli accretion (ZEBRA) flow model, which proposes that during the super-Eddington phase, the disc is quasi-spherical, radiation-pressure dominated, and accompanied by the production of strong jets. We construct light curves for both on- and off-axis (with respect to the jet) observers to account for the anisotropic nature of the jetted emission. We find that at optical wavelengths, emission from the accretion flow is orders of magnitude brighter than that produced by the jet, even with boosting from synchrotron self-Compton. Comparing to the observed jetted TDE Swift J2058.4+0516, we find that the ZEBRA model accurately captures the timescale for which accretion remains super-Eddington and reproduces the luminosity of the transient. However, we find the shape of the light curves deviate at early times and the radius and temperature of our modelled ZEBRA are $\sim2.7 - 4.1$ times smaller and $\sim1.4 - 2.3$ times larger, respectively, than observed. We suggest that this indicates the ZEBRA inflates more, and more rapidly, than currently predicted by the model, and we discuss possible extensions to the model to account for this. Such refinements, coupled with valuable new data from upcoming large scale surveys, could help to resolve the nature of super-Eddington TDEs and how they are powered.

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