Choked accretion onto a Kerr black hole

A. Aguayo-Ortiz, O. Sarbach, E. Tejeda
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引用次数: 4

Abstract

The choked accretion model consists of a purely hydrodynamical mechanism in which, by setting an equatorial to polar density contrast, a spherically symmetric accretion flow transitions to an inflow-outflow configuration. This scenario has been studied in the case of a (non-rotating) Schwarzschild black hole as central accretor, as well as in the non-relativistic limit. In this article, we generalize these previous works by studying the accretion of a perfect fluid onto a (rotating) Kerr black hole. We first describe the mechanism by using a steady-state, irrotational analytic solution of an ultrarelativistic perfect fluid, using a stiff equation of state. We then use hydrodynamical numerical simulations in order to explore a more general equation of state. Analyzing the effects of the black hole's rotation on the flow, we find in particular that the choked accretion inflow-outflow morphology prevails for all possible values of the black hole's spin parameter, showing the robustness of the model.
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克尔黑洞的窒息吸积
阻塞吸积模型由一个纯粹的流体动力学机制组成,其中,通过设置赤道和极地密度对比,球体对称的吸积流转变为流入-流出配置。这种情况已经在(非旋转)史瓦西黑洞作为中心吸积体的情况下以及在非相对论性极限下进行了研究。在这篇文章中,我们通过研究完美流体对(旋转)克尔黑洞的吸积来推广这些先前的工作。我们首先用一个超相对论性完美流体的稳态无旋转解析解,用一个僵硬的状态方程来描述这一机制。然后,我们使用流体动力学数值模拟来探索更一般的状态方程。分析了黑洞旋转对流动的影响,我们特别发现,在黑洞自旋参数的所有可能值下,阻塞吸积流入-流出形态普遍存在,显示了模型的鲁棒性。
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