作用于超大质量黑洞的 N-body 动力摩擦校准模型

IF 4.7 3区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Anna Genina, Volker Springel, Antti Rantala
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引用次数: 0

摘要

黑洞被认为是调节大质量星系恒星形成的关键,因此在宇宙学流体力学模拟中忠实再现这些天体的物理特性至关重要。有限的空间和质量分辨率以及相关的离散性噪声使得跟踪黑洞的动力学尤其具有挑战性。尤其是动力学摩擦,它是驱动大质量黑洞向星系中心移动的原因,但却无法用软化的 N 体相互作用来准确模拟。为了模拟动力学摩擦或直接将其全部影响纳入模拟,人们提出了许多子网格模型。这些方法各有利弊,但都有一个共同的问题,即无法表示质量低于模拟暗物质粒子质量几倍的黑洞。在本文中,我们提出了一种未解决的动力学摩擦校正方法,并在 KETJU 代码运行的模拟中进行了校正,在该模拟中,黑洞的引力相互作用没有被软化。我们证明,我们的修正能够以正确的速率使质量大于暗物质粒子质量的黑洞下沉。我们证明随机性对低质量黑洞(MBH ≤ 5MDM)的影响很大,并提出了随机加热的修正方法。结合起来,这种方法适用于下一代宇宙学流体力学模拟,即用现实的黑洞轨道联合跟踪星系和黑洞的增长。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A calibrated model for N-body dynamical friction acting on supermassive black holes
Black holes are believed to be crucial in regulating star formation in massive galaxies, which makes it essential to faithfully represent the physics of these objects in cosmological hydrodynamics simulations. Limited spatial and mass resolution and the associated discreteness noise make following the dynamics of black holes especially challenging. In particular, dynamical friction, which is responsible for driving massive black holes towards the centres of galaxies, cannot be accurately modelled with softened N-body interactions. A number of subgrid models have been proposed to mimic dynamical friction or directly include its full effects in simulations. Each of these methods has its individual benefits and shortcomings, while all suffer from a common issue of being unable to represent black holes with masses below a few times the simulated dark matter particle mass. In this paper, we propose a correction for unresolved dynamical friction, which has been calibrated on simulations run with the code KETJU, in which gravitational interactions of black holes are not softened. We demonstrate that our correction is able to sink black holes with masses greater than the dark matter particle mass at the correct rate. We show that the impact of stochasticity is significant for low-mass black holes (MBH ≤ 5MDM) and propose a correction for stochastic heating. Combined, this approach is applicable to next generation cosmological hydrodynamics simulations that jointly track galaxy and black hole growth with realistic black hole orbits.
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来源期刊
CiteScore
9.10
自引率
37.50%
发文量
3198
审稿时长
3 months
期刊介绍: Monthly Notices of the Royal Astronomical Society is one of the world''s leading primary research journals in astronomy and astrophysics, as well as one of the longest established. It publishes the results of original research in positional and dynamical astronomy, astrophysics, radio astronomy, cosmology, space research and the design of astronomical instruments.
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