论文标题

黑洞 - 火灾中的星系缩放关系:黑洞位置和合并的重要性

Black hole -- galaxy scaling relations in FIRE: the importance of black hole location and mergers

论文作者

Çatmabacak, Onur, Feldmann, Robert, Anglés-Alcázar, Daniel, Faucher-Giguère, Claude-André, Hopkins, Philip F., Kereš, Dušan

论文摘要

超级质量黑洞(SMBH)及其宿主星系的同时增长仍有待探索,尤其是在高红移时。虽然经常被理解为通过AGN反馈自我调节的结果,但也可以通过替代SMBH积聚模型来解释。在这里,我们通过在现实环境(FIRE)项目中的一部分是反馈的一部分来研究SMBHS的增长,从而扩展了先前的工作。 SMBHS的生长是通过不同的黑洞积聚模型,位置和合并处理的后加工来建模的,并通过与即时计算进行了验证。重力扭矩驱动积聚(GTDA)模型预测的比例关系与低红移时的观测值一致,而无需AGN反馈,与积聚速率强烈取决于SMBH质量的模型相反。在高红移时,我们发现与以前的理论结果一致的局部规模关系偏差。特别是,SMBH的质量不足,大概是由于出色的反馈,但是一旦其主机星系达到$ M_* \ sim 10^{10} M _ {\ odot} $,就开始有效地增长。我们在简单的分析模型的背景下分析和解释这些发现。最后,我们表明预测的缩放关系敏感地取决于SMBH位置和SMBH合并的效率,尤其是在低质量系统中。这些发现突出了理解SMBH-Galaxy缩放关系的演变,以预测跨宇宙历史中SMBH合并的重力波信号的速率。

The concurrent growth of supermassive black holes (SMBHs) and their host galaxies remains to be fully explored, especially at high redshift. While often understood as a consequence of self-regulation via AGN feedback, it can also be explained by alternative SMBH accretion models. Here, we expand on previous work by studying the growth of SMBHs with the help of a large suite of cosmological zoom-in simulations (MassiveFIRE) that are part of the Feedback in Realistic Environments (FIRE) project. The growth of SMBHs is modelled in post-processing with different black hole accretion models, placements, and merger treatments, and validated by comparing to on-the-fly calculations. Scaling relations predicted by the gravitational torque driven accretion (GTDA) model agree with observations at low redshift without the need for AGN feedback, in contrast to models in which the accretion rate depends strongly on SMBH mass. At high redshift, we find deviations from the local scaling relations in line with previous theoretical results. In particular, SMBHs are under-massive, presumably due to stellar feedback, but start to grow efficiently once their host galaxies reach $M_* \sim 10^{10} M_{\odot}$. We analyse and explain these findings in the context of a simple analytic model. Finally, we show that the predicted scaling relations depend sensitively on the SMBH location and the efficiency of SMBH merging, particularly in low-mass systems. These findings highlight the relevance of understanding the evolution of SMBH-galaxy scaling relations to predict the rate of gravitational wave signals from SMBH mergers across cosmic history.

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