论文标题

二进制黑洞合并中的地平线II:通量,多极矩和稳定性

Horizons in a binary black hole merger II: Fluxes, multipole moments and stability

论文作者

Pook-Kolb, Daniel, Birnholtz, Ofek, Jaramillo, Jose Luis, Krishnan, Badri, Schnetter, Erik

论文摘要

我们详细研究了二进制黑洞合并期间边缘捕获的表面的动力和稳定性。这是两部分研究的第二项。第一部分研究了由边缘表面所追踪的世界管的基本几何方面,该地区的状态增加了法律。在这里,我们继续研究合并期间的地平线动力学,再次是两个非旋转黑洞的正面碰撞。特别是,在合并过程中,我们遵循稳定运算符的频谱,以解决问题中存在的所有视野,并实施系统的频谱统计信息进行分析。我们还研究了合并的更多物理方面,即跨越地平线并导致区域变化的能量通量。我们在地平线上构建了一个天然坐标系,并分解出磁通中出现的各个场,主要是在旋转的加权球形谐波中,主要是外向空正常的剪切。对于每种模式,我们提取衰减速率,因为最终黑洞接近平衡。衰减的后期部分与预期的准正常模式频率一致,而早期部分显示出更陡峭的下降。同样,我们计算了地平线多极矩的衰减,再次找到了两个不同的机制。最后,寻求对这种行为的解释,在膜范式的解释中,我们试图确定该区域的不同动力学时间尺度的增加。这导致了``Slowness参数''的定义,以预测从更快到较慢的衰减的过渡开始。

We study in detail the dynamics and stability of marginally trapped surfaces during a binary black hole merger. This is the second in a two-part study. The first part studied the basic geometric aspects of the world tubes traced out by the marginal surfaces and the status of the area increase law. Here we continue and study the dynamics of the horizons during the merger, again for the head-on collision of two non-spinning black holes. In particular we follow the spectrum of the stability operator during the course of the merger for all the horizons present in the problem and implement systematic spectrum statistics for its analysis. We also study more physical aspects of the merger, namely the fluxes of energy which cross the horizon and cause the area to change. We construct a natural coordinate system on the horizon and decompose the various fields appearing in the flux, primarily the shear of the outgoing null normal, in spin weighted spherical harmonics. For each of the modes we extract the decay rates as the final black hole approaches equilibrium. The late part of the decay is consistent with the expected quasi-normal mode frequencies, while the early part displays a much steeper fall-off. Similarly, we calculate the decay of the horizon multipole moments, again finding two different regimes. Finally, seeking an explanation for this behavior, motivated by the membrane paradigm interpretation, we attempt to identify the different dynamical timescales of the area increase. This leads to the definition of a ``slowness parameter'' for predicting the onset of transition from a faster to a slower decay.

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