论文标题

合并大型黑洞二进制的恒星轨道的演变

Evolution of Stellar Orbits Around Merging Massive Black-Hole Binary

论文作者

Liu, Bin, Lai, Dong

论文摘要

我们研究了BH旋转引起的一般相对论效应,研究恒星周围的恒星的长期轨道演变。当BH旋转与二元轨道角动量相比并将其错位时,环形恒星的轨道轴($ \ hat {\ Mathbf {l}} $)可能会在引力散热驱动的二进制轨道衰减期间经历显着的演变。包括主要(较大)BH的自旋效应,我们发现从几乎几乎共面轨道取向开始,轨道轴$ \ hat {\ Mathbf {l}} $优先地朝着BH二进制后的旋转方向发展,无论是在BH二进制后的旋转方向而言,无论是在BH二进制的合并之后,无论是初始BH的初始BH而言。这种对齐现象,即$ \ hat {\ mathbf {l}} $与Remanent Bh $ \ hat {\ Mathbf {S}} $之间的旋转轴之间的小最终未对准角,可以使用Adibibatic Invariance的原则来分析地理解。对于具有极高质量比的BH二进制文件($ M_2/M_1 \ LISHSIM0.01 $),$ \ hat {\ Mathbf {l}} $可能会经历更复杂的进化,因为绝热不变性破裂,但是当对齐的趋势趋于相当合理时,当最初的双级旋转旋转角度相关时,相当相关。我们的结果表明,恒星轨道的方向与中央BH的自旋轴之间的相关性可以提供大量BH合并历史的潜在特征。

We study the long-term orbital evolution of stars around a merging massive or supermassive black-hole (BH) binary, taking into account the general relativistic effect induced by the BH spin. When the BH spin is significant compared to and misaligned with the binary orbital angular momentum, the orbital axis ($\hat{\mathbf{l}}$) of the circumbinary star can undergo significant evolution during the binary orbital decay driven by gravitational radiation. Including the spin effect of the primary (more massive) BH, we find that starting from nearly coplanar orbital orientations, the orbital axes $\hat{\mathbf{l}}$ of circumbinary stars preferentially evolve towards the spin direction after the merger of the BH binary, regardless of the initial BH spin orientation. Such alignment phenomenon, i.e., small final misalignment angle between $\hat{\mathbf{l}}$ and the spin axis of the remanent BH $\hat{\mathbf{S}}$, can be understood analytically using the principle of adiabatic invariance. For the BH binaries with extremely mass ratio ($m_2/m_1\lesssim0.01$), $\hat{\mathbf{l}}$ may experience more complicated evolution as adiabatic invariance breaks down, but the trend of alignment still works reasonably well when the initial binary spin-orbit angle is relatively small. Our result suggests that the correlation between the orientations of stellar orbits and the spin axis of the central BH could provide a potential signature of the merger history of the massive BH.

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