论文标题

碰撞放松的核星簇中巨大黑洞二进制的演变 - 质量分离的影响

Evolution of Massive Black Hole Binaries in Collisionally Relaxed Nuclear Star Clusters -- Impact of Mass Segregation

论文作者

Mukherjee, Diptajyoti, Zhu, Qirong, Ogiya, Go, Rodriguez, Carl L., Trac, Hy

论文摘要

巨大的黑洞(MBH)二进制物被认为是由Lisa等GW探测器检测到的最重要的引力波(GW)之一。但是,在GW发射阶段的阶段中,MBH二进制文件的动力学有很多不确定性。最近有人提出,核星簇(NSC)可以提供一条可行的途径,以克服星系中心MBH二进制文件的最终parsec问题。 NSC是碰撞系统,其中质谱的存在将改变动力学。在这项研究中,我们使用一套具有超过100万个颗粒的高分辨率$ n $体型模拟,以了解在存在NSC颗粒质谱下的碰撞松弛如何影响MBH二进制的动力学在两个NSC的合并下。我们考虑具有不同质量比和其他非释放模型的MBH二进制文件。我们发现,由碰撞弛豫驱动的质量分离可以导致质量比二进制较低的质量比例加速硬化,但在较高的质量比二进制中具有相反的效果。至关重要的是,放松的模型还表现出二元形成时偏心率要低得多,而在硬化阶段的增长则可以忽略不计,从而导致合并时间更长。结果是可靠的,并强调了碰撞放松对改变二进制动力学的重要性。我们的模型是最先进的,使用零软化,并具有足够高的粒子数来现实地对NSC进行建模。

Massive Black Hole (MBH) binaries are considered to be one of the most important sources of Gravitational Waves (GW) that can be detected by GW detectors like LISA. However, there are a lot of uncertainties in the dynamics of MBH binaries in the stages leading up to the GW-emission phase. It has been recently suggested that Nuclear Star Clusters (NSCs) could provide a viable route to overcome the final parsec problem for MBH binaries at the center of galaxies. NSCs are collisional systems where the dynamics would be altered by the presence of a mass spectrum. In this study, we use a suite of high-resolution $N$-body simulations with over 1 million particles to understand how collisional relaxation under the presence of a mass spectrum of NSC particles affects the dynamics of the MBH binary under the merger of two NSCs. We consider MBH binaries with different mass ratios and additional non-relaxed models. We find that mass-segregation driven by collisional relaxation can lead to accelerated hardening in lower mass ratio binaries but has the opposite effect in higher mass ratio binaries. Crucially, the relaxed models also demonstrate much lower eccentricities at binary formation and negligible growth during hardening stages leading to longer merger timescales. The results are robust and highlight the importance of collisional relaxation on changing the dynamics of the binary. Our models are state-of-the-art, use zero softening, and high enough particle numbers to model NSCs realistically.

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