论文标题
二进制黑洞对其外圆盘的影响
Impact of a binary black hole on its outer circumbinary disc
论文作者
论文摘要
吸收超级二进制黑洞(SMBBHS)是多通智主义天文学的潜在目标,因为它们会发出重力波(GW),而它们的环境则散发出电磁波(EM)波。为了充分利用联合GW-EM检测,我们首先需要获得理论预测的EM信号,并明确链接与BBH。在这方面,这是一系列专门用于吸收合并前BBH及其相关的可观察物的论文中的第一篇。在这里,我们将剧烈积聚系统的数值观测值扩展到任何时空。与以前的研究不同,几乎完全集中在内部区域上,我们研究了BBH对位于辐射(或波浪)区域的外部电路盘的影响,在实施了旋转的近似分析时空,灵感的BBH在E-Novas中。我们遵循辐射区度量标准中延迟效应引起的椎间盘密度中弱螺旋结构的形成。然后,使用SMBBH源,使用一般性相关的射线追踪代码进行仿真数据。密度螺旋形成了半轨道时灯弯曲的小(<1%)但明确的调节。该信号虽然很弱,但从根本上与轴对称光盘围绕单个BH的圆盘有所不同,该圆盘可为BBH对其外盘的影响提供下限。发现了这种电位差异,我们研究了二进制参数如何影响该调制,以找到最佳的情况,该案例是任何二元质量比的高源倾向(从0.1到1)。
Accreting supermassive binary black holes (SMBBHs) are potential targets for multi-messenger astronomy as they emit gravitational waves (GW) while their environment emits electromagnetic (EM) waves. In order to get the most out of a joint GW-EM detection we first need to obtain theoretically-predicted EM signals unambiguously linked to BBHs. In that respect, this is the first of a series of papers dedicated to accreting pre-merger BBHs and their associated EM observables. Here, we extend our Numerical Observatory of Violent Accreting systems, e-NOVAs, to any spacetime. Unlike previous studies, almost exclusively focused on the inner regions, we investigated the impact of the BBH on its outer circumbinary disc, located in the radiation (or wave) zone, after implementing an approximate analytical spacetime of spinning, inspiralling BBHs in e-NOVAs. We follow the formation of a weak spiral structure in disc density arising from the retardation effects in the radiation zone metric. Simulation data are then post-processed with a general-relativistic ray-tracing code incorporating the same BBH spacetime, assuming SMBBH sources. The density spiral creates a small (<1%) but unambiguous modulation of the lightcurve at the semi-orbital period. This signal, although weak, is fundamentally different from that of an axisymmetric disc around a single BH providing a lower limit on the impact of a BBH on its outer disc. This potential difference being found, we study how binary parameters impact this modulation in order to find the optimal case which is a high source inclination of any binary mass ratio (from 0.1 to 1).