论文标题

AGN光盘中的黑洞二进制形成:从隔离到合并

Black Hole Binary Formation in AGN Discs: From Isolation to Merger

论文作者

Rowan, Connar, Boekholt, Tjarda, Kocsis, Bence, Haiman, Zoltán

论文摘要

由Ligo-Virgo-Kagra合并黑洞的发现数量增加的动机,活性银河核(AGN)碟片中的黑洞(BH)二进制合并被研究为可能的合并通道。在这一途径中,BH在气盘中遇到的是通过与盘中的气体相互作用,并通过局部气体引起的重力扭矩相互作用,并通过盘中的气体相互作用。为了确定此合并途径的可行性,我们介绍了第一个3D全局流体动力学模拟,该模拟是恒星质量的BH二进制文件AGN盘的形成和演变,具有三个不同的AGN椎间盘质量和五个不同的初始径向分离。这15个模拟表明,在一系列圆盘密度中,二进制捕获的二进制捕获可以成功,包括远低于标准辐射有效的α盘的病例,发现这些捕获的二进制文件随后大多数被周围的气体硬化。偏心率的演化在很大程度上取决于轨道旋转,在这种轨道旋转中,在轨道旋转中,术前二进制型由重力扭矩支配,形成了它们的环形迷你盘,而偏心率受阻,而对于逆行二进制,偏心率由积聚符号兴奋至0.9。在两种情况下,逆行二进制室最终经历了亲密的小脑膜通过,这仅在仅几千个二元轨道后通过重力波导致合并。因此,合并时间尺度可能比AGN光盘寿命短得多。这些模拟支持BHS有效的AGN光盘合并途径。

Motivated by the increasing number of detections of merging black holes by LIGO-VIRGO-KAGRA, black hole (BH) binary mergers in the discs of active galactic nuclei (AGN) is investigated as a possible merger channel. In this pathway, BH encounters in the gas disc form mutually bound black hole binary systems through interaction with the gas in the disc and subsequently inspiral through gravitational torques induced by the local gas. To determine the feasibility of this merger pathway, we present the first 3D global hydrodynamic simulations of the formation and evolution of a stellar-mass BH binaries AGN discs with three different AGN disc masses and five different initial radial separations. These 15 simulations show binary capture of prograde and retrograde binaries can be successful in a range of disc densities including cases well below that of a standard radiatively efficient alpha disc, identifying that the majority of these captured binaries are then subsequently hardened by the surrounding gas. The eccentricity evolution depends strongly on the orbital rotation where prograde binaries are governed by gravitational torques form their circumbinary mini-disc, with eccentricities being damped, while for retrograde binaries the eccentricities are excited to > 0.9 by accretion torques. In two cases, retrograde binaries ultimately undergo a close periapsis passage which results in a merger via gravitational waves after only a few thousand binary orbits. Thus, the merger timescale can be far shorter than the AGN disc lifetime. These simulations support an efficient AGN disc merger pathway for BHs.

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