Radiative Cooling Changes the Dynamics of Magnetically Arrested Disks

Akshay Singh, Damien Bégué and Asaf Pe’er
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Abstract

We study magnetically arrested disks (MADs) around rotating black holes (BHs) under the influence of radiative cooling. We introduce a critical value of the mass accretion rate for which the cooling by the synchrotron process efficiently radiates the thermal energy of the disk. We find , where is the Eddington mass accretion rate. The normalization constant depends on the saturated magnetic flux and on the ratio of electron to proton temperatures, but not on the BH mass. We verify our analytical estimate using a suite of general relativistic magnetohydrodynamic simulations for a range of BH spin parameters a ∈ {−0.94, −0.5, 0, 0.5, 0.94} and mass accretion rates ranging from to . We numerically observe that the MAD parameter and the jet efficiency vary by a factor of ≈2 as the mass accretion rate increases above , which confirms our analytical result. We further detail how the forces satisfying the quasi-equilibrium of the disk change, with the magnetic contribution increasing as the thermal contribution decreases.
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辐射冷却改变了磁碟的动力学
研究了辐射冷却作用下旋转黑洞周围的磁阻盘(MADs)。我们引入了一个质量吸积速率的临界值,在这个临界值下,同步加速器过程的冷却有效地辐射了磁盘的热能。我们发现,爱丁顿质量吸积率在哪里。归一化常数取决于饱和磁通量和电子与质子温度之比,而不取决于黑洞质量。我们使用一套广义相对论磁流体力学模拟来验证我们的分析估计,该模拟适用于一系列黑洞自旋参数a∈{−0.94,−0.5,0,0.5,0.94}和质量吸积速率范围为。数值结果表明,随着质量吸积速率的增大,MAD参数和射流效率的变化系数为≈2,这与我们的分析结果一致。我们进一步详细说明了满足圆盘准平衡的力是如何变化的,随着磁贡献的增加而热贡献的减少。
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