论文标题
联邦弯曲的初始数据,用于充电,在任意轨道上旋转黑洞二进制
Conformally curved initial data for charged, spinning black hole binaries on arbitrary orbits
论文作者
论文摘要
我们提出了一种构造带有任意轨道上旋转的带电黑洞二进制的共形弯曲初始数据的方法。我们从[Lovelace等人,Phys。 Rev. D {78},084017(2008)]将Kerr-Newman指标用于超塑性黑洞并求解电磁约束方程。我们在伪码SGRID中实施构造。因此,与使用穿刺方法[Bozzola和Paschalidis,Phys构建的现有带电的黑洞初始数据相比,该代码提供了一种互补且完全独立的基于切除的结构。修订版D {99},104044(2019)]。它还提供了Lovelace等人的独立实现(一些小变化)。真空结构。我们为轨道二进制文件的不同配置构建初始数据,例如,使用高电荷或迅速旋转的黑洞(分别为90%和80%的极值和80%的极值和80%的极值,尽管该代码应该能够使用较高的参数使用较高的分辨率来产生更高的值的数据),以及对于通用旋转的,带有收益的黑洞,也可以产生这些参数的较高值。我们以有限的差异进行探索性演变,移动穿刺代码BAM(在真空案例中),并进行了(包括电荷的正面碰撞),填充了切除表面。在带电的情况下,这些初始数据的进化为修改后的重力理论提供了二进制黑洞波形的代理。此外,对爱因斯坦 - 麦克斯韦 - 迪拉顿理论的构建的概括应该很简单。
We present a method to construct conformally curved initial data for charged black hole binaries with spin on arbitrary orbits. We generalize the superposed Kerr-Schild, extended conformal thin sandwich construction from [Lovelace et al., Phys. Rev. D {78}, 084017 (2008)] to use Kerr-Newman metrics for the superposed black holes and to solve the electromagnetic constraint equations. We implement the construction in the pseudospectral code SGRID. The code thus provides a complementary and completely independent excision-based construction, compared to the existing charged black hole initial data constructed using the puncture method [Bozzola and Paschalidis, Phys. Rev. D {99}, 104044 (2019)]. It also provides an independent implementation (with some small changes) of the Lovelace et al. vacuum construction. We construct initial data for different configurations of orbiting binaries, e.g., with black holes that are highly charged or rapidly spinning (90 and 80 percent of the extremal values, respectively, for this initial test, though the code should be able to produce data with even higher values of these parameters using higher resolutions), as well as for generic spinning, charged black holes. We carry out exploratory evolutions with the finite difference, moving punctures codes BAM (in the vacuum case) and HAD (for head-on collisions including charge), filling inside the excision surfaces. In the charged case, evolutions of these initial data provide a proxy for binary black hole waveforms in modified theories of gravity. Moreover, the generalization of the construction to Einstein-Maxwell-dilaton theory should be straightforward.