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General-relativistic Resistive Magnetohydrodynamics with Robust Primitive-variable Recovery for Accretion Disk Simulations

机译:具有鲁棒原始变量恢复的通用相对传动磁力学,用于吸收磁盘模拟

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摘要

Recent advances in black hole astrophysics, particularly the first visual evidence of a supermassive black hole at the center of the galaxy M87 by the Event Horizon Telescope, and the detection of an orbiting "hot spot" nearby the event horizon of Sgr A* in the Galactic center by the Gravity Collaboration, require the development of novel numerical methods to understand the underlying plasma microphysics. Non-thermal emission related to such hot spots is conjectured to originate from plasmoids that form due to magnetic reconnection in thin current layers in the innermost accretion zone. Resistivity plays a crucial role in current sheet formation, magnetic reconnection, and plasmoid growth in black hole accretion disks and jets. We included resistivity in the three-dimensional general-relativistic magnetohydrodynamics (GRMHD) code BHAC and present the implementation of an implicit-explicit scheme to treat the stiff resistive source terms of the GRMHD equations. The algorithm is tested in combination with adaptive mesh refinement to resolve the resistive scales and a constrained transport method to keep the magnetic field solenoidal. Several novel methods for primitive-variable recovery, a key part in relativistic magnetohydrodynamics codes, are presented and compared for accuracy, robustness, and efficiency. We propose a new inversion strategy that allows for resistive-GRMHD simulations of low gas-to-magnetic pressure ratio and highly magnetized regimes as applicable for black hole accretion disks, jets, and neutron-star magnetospheres. We apply the new scheme to study the effect of resistivity on accreting black holes, accounting for dissipative effects as reconnection.
机译:黑洞天体物理学的最新进展,特别是由事件望远镜望远镜的星系M87中心位于星系M87的中心的第一个视觉证据,并检测附近SGR A *的事件范围附近的轨道“热点”通过重力协作的银河中心需要开发新的数值方法来了解潜在的血浆微生物。与这种热点相关的非热发射被猜测以源自由于最内增值区中的薄电流层中的磁性重新连接而形成的差异。电阻率在当前片材形成,磁性重新连接和黑洞吸收磁盘和喷射器中的血浆生长中起着至关重要的作用。我们包括三维通用相对论磁力流体动力学(GRMHD)代码BHAC的电阻率,并呈现隐式显式方案来处理GRMHD方程的硬阻源术语。该算法与自适应网格细化结合地测试,以解析电阻尺度和约束的传输方法以保持磁场电磁阀。提出并比较了用于准确,鲁棒性和效率的相对论磁力学码的关键部分的几种基因变量回收的新方法。我们提出了一种新的反转策略,允许对低气体压力比和高磁化制度的电阻-GRMHD模拟,以及适用于黑洞吸积盘,喷射器和中子星磁体。我们采用新方案来研究电阻率对黑洞的电阻率,占重新连接的耗散效应。

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    Goethe Univ Inst Theoret Phys Max von Laue Str 1 D-60438 Frankfurt Germany;

    Goethe Univ Inst Theoret Phys Max von Laue Str 1 D-60438 Frankfurt Germany;

    Goethe Univ Inst Theoret Phys Max von Laue Str 1 D-60438 Frankfurt Germany;

    Goethe Univ Inst Theoret Phys Max von Laue Str 1 D-60438 Frankfurt Germany;

    Goethe Univ Inst Theoret Phys Max von Laue Str 1 D-60438 Frankfurt Germany;

    Goethe Univ Inst Theoret Phys Max von Laue Str 1 D-60438 Frankfurt Germany;

    Goethe Univ Inst Theoret Phys Max von Laue Str 1 D-60438 Frankfurt Germany;

    Katholieke Univ Leuven Ctr Math Plasma Astrophys Dept Math Celestijnenlaan 200B B-3001 Leuven Belgium;

    Katholieke Univ Leuven Ctr Math Plasma Astrophys Dept Math Celestijnenlaan 200B B-3001 Leuven Belgium;

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  • 正文语种 eng
  • 中图分类 天体物理学;天文学;
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