论文标题
偏心潮汐破坏事件围绕超质量黑洞的磁盘:动力学和热发射
Eccentric Tidal Disruption Event Disks around Supermassive Black Holes: Dynamics and Thermal Emission
论文作者
论文摘要
在超级质量黑洞(SMBH)周围的恒星潮汐破坏事件(TDE)之后,如果恒星碎片流迅速循环并形成紧凑的磁盘,则预计TDE发射在软X射线或远面的Ultra-Violet(UV)中达到峰值。观察到许多TDE候选物在近紫外线和光学上达到峰值的事实挑战了常规TDE发射模型。通过将磁盘理想化为椭圆形轨道的嵌套序列,这些椭圆形轨道通过压力将绝热通信,并通过在几乎抛物线碎屑流的循环过程中通过消散的能量加热,我们研究了高度偏心的TDE磁盘的动力学和热发射,包括从SmbB中获得一般性占主导地位的Apsidal Apsidal prevession的效力。我们计算均匀预训练,APSID对齐和高度偏心的TDE磁盘的性质,并发现现实的TDE性能(SMBH和Stellar质量,Periapsis距离等)中存在高度偏心的磁盘溶液。考虑到附近(apoapsis)附近的压缩加热(冷却),我们发现我们的理想化的偏心磁盘模型可以产生与许多光学明亮的TDE候选者的X射线和UV/光学亮度一致的发射。我们的工作试图量化TDE发射的冲击热模型预期的热发射,发现流式碰撞是一种有前途的光学上明亮TDE的有前途的方法。
After the Tidal Disruption Event (TDE) of a star around a SuperMassive Black Hole (SMBH), if the stellar debris stream rapidly circularizes and forms a compact disk, the TDE emission is expected to peak in the soft X-ray or far Ultra-Violet (UV). The fact that many TDE candidates are observed to peak in the near UV and optical has challenged conventional TDE emission models. By idealizing a disk as a nested sequence of elliptical orbits which communicate adiabatically via pressure forces, and are heated by energy dissipated during the circularization of the nearly parabolic debris streams, we investigate the dynamics and thermal emission of highly eccentric TDE disks, including the effect of General-Relativistic apsidal precession from the SMBH. We calculate the properties of uniformly precessing, apsidally aligned, and highly eccentric TDE disks, and find highly eccentric disk solutions exist for realistic TDE properties (SMBH and stellar mass, periapsis distance, etc.). Taking into account compressional heating (cooling) near periapsis (apoapsis), we find our idealized eccentric disk model can produce emission consistent with the X-ray and UV/Optical luminosities of many optically bright TDE candidates. Our work attempts to quantify the thermal emission expected from the shock-heating model for TDE emission, and finds stream-stream collisions are a promising way to power optically bright TDEs.