由超爱丁顿流出物与环核介质碰撞产生的潮汐破坏事件的射电辐射

Fangyi (Fitz) Hu, Adelle Goodwin, Daniel J. Price, Ilya Mandel, Re’em Sari and Kimitake Hayasaki
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摘要

在这篇论文中,我们模拟了一颗1m⊙主序星在106M⊙黑洞周围潮汐破裂的流出物与最初球对称的环核云之间的碰撞。我们利用广义相对论平滑粒子流体力学模拟恒星在束缚和非束缚初始轨道上的破坏,自一致地发射超级爱丁顿流出。我们发现,在最初的恒星破裂后10天形成的冲击会产生迅速的无线电发射。在我们的模拟中,激波半径(≈1017 cm)、速度(~ 0.15c)和总能量(~ 1051 erg)与从潮汐破坏事件(TDEs)的无线电观测推断的结果相符。我们通过射线追踪来合成射电图像和光谱,以便与观测结果进行比较。虽然TDE出口是准球形的,但同步加速器发射区域是非球形的,但在初始轨道平面上下具有反射对称性。我们的合成光谱显示出峰值频率的连续衰减,与即时无线电TDE观测相匹配。我们的模型支持这样的假设,即tde的同步加速器射电耀斑是由流出物与环核物质碰撞产生的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Radio Emission from Tidal Disruption Events Produced by the Collision between Super-Eddington Outflows and the Circumnuclear Medium
In this Letter, we simulate the collision between outflows from the tidal disruption of a 1 M⊙ main-sequence star around a 106M⊙ black hole and an initially spherically symmetric circumnuclear cloud. We launch super-Eddington outflows self-consistently by simulating the disruption of stars on both bound and unbound initial orbits using general relativistic smoothed particle hydrodynamics. We find that shocks formed as early as ∼10 days after the initial stellar disruption produce prompt radio emission. The shock radius (≈1017 cm), velocity (∼0.15c), and total energy (∼1051 erg) in our simulations match those inferred from radio observations of tidal disruption events (TDEs). We ray-trace to produce synthetic radio images and spectra to compare with the observations. While the TDE outflow is quasi-spherical, the synchrotron emitting region is aspherical but with reflection symmetry above and below the initial orbital plane. Our synthetic spectra show a continuous decay in peak frequency, matching prompt radio TDE observations. Our model supports the hypothesis that synchrotron radio flares from TDEs result from the collision between outflows and the circumnuclear material.
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