论文标题

迅速旋转的倾斜黑洞周围的自我修剪磁盘:一般相对论模拟

Self-gravitating disks around rapidly spinning, tilted black holes: General relativistic simulations

论文作者

Tsokaros, Antonios, Ruiz, Milton, Shapiro, Stuart L., Paschalidis, Vasileios

论文摘要

我们对自我磨碎的黑洞盘进行了一般的相对论模拟,其中黑洞的旋转相对于磁盘的角动量明显地倾斜($ 45^\ circ $和$ 90^\ circ $),而磁盘与黑孔质量比为$ 16 \% - 28 \%\%\%。黑洞正在迅速旋转,无量纲的旋转最高为$ \ sim 0.97 $。这些是对此类系统的第一个自洽的流体动力模拟,这可能是多通用器天文学的主要来源。特别是倾斜的黑孔 - 盘系统导致:i)黑洞进攻; ii)磁盘进动并在黑洞周围弯曲; iii)与对齐/抗签名的系统相比,帕帕洛伊岛普林格不稳定性的早期饱和,尽管具有较短的模式增长时间尺度; iv)获取一个小的黑洞踢速度; v)通过各种模式超出各种模式的重力波排放,但与典型的$(2,2)$模式一样强;和vi)磁盘的角动量与黑洞旋转的可能性。这种比对与Bardeen-Petterson效应无关,并且类似于固体旋转。我们的模拟表明,我们模型的任何电磁光度都可以用相对论的喷气机,例如表征短伽马射线爆发的射流。根据黑孔 - 磁盘系统比例,可以通过Ligo/Pirgo,Lisa和/或其他激光干涉仪检测重力波。

We perform general relativistic simulations of self-gravitating black hole-disks in which the spin of the black hole is significantly tilted ($45^\circ$ and $90^\circ$) with respect to the angular momentum of the disk and the disk-to-black hole mass ratio is $16\%-28\%$. The black holes are rapidly spinning with dimensionless spins up to $\sim 0.97$. These are the first self-consistent hydrodynamic simulations of such systems, which can be prime sources for multimessenger astronomy. In particular tilted black hole-disk systems lead to: i) black hole precession; ii) disk precession and warping around the black hole; iii) earlier saturation of the Papaloizou-Pringle instability compared to aligned/antialigned systems, although with a shorter mode growth timescale; iv) acquisition of a small black-hole kick velocity; v) significant gravitational wave emission via various modes beyond, but as strong as, the typical $(2,2)$ mode; and vi) the possibility of a broad alignment of the angular momentum of the disk with the black hole spin. This alignment is not related to the Bardeen-Petterson effect and resembles a solid body rotation. Our simulations suggest that any electromagnetic luminosity from our models may power relativistic jets, such as those characterizing short gamma-ray bursts. Depending on the black hole-disk system scale the gravitational waves may be detected by LIGO/Virgo, LISA and/or other laser interferometers.

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