相对论重联中的有效电阻率:一个基于全动力学模拟的公式

Abigail Moran, Lorenzo Sironi, Aviad Levis, Bart Ripperda, Elias R. Most and Sebastiaan Selvi
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引用次数: 0

摘要

各种高能天体物理现象都是由储存在反向磁场中的能量通过磁重联释放而产生的。具有均匀电阻率的单流体电阻磁流体动力学(MHD)模拟比等效动力学计算低得多(近1个数量级)。在电阻式MHD中,重联驱动现象可以通过动力学计算得到不均匀的“有效”电阻率。在这项工作中,我们分析了一套完全动力学的粒子池(PIC)模拟相对论对等离子体重联-其中磁能大于静止质量能-不同强度的引导场正交于交变分量。我们提取了有效电阻率的经验公式,其中B0为重联磁场强度,J为电流密度,nt为实验室框架总数密度,e为基本电荷,c为光速。导场依赖性编码为α和p,拟合到PIC数据中。该电阻率公式仅依赖于单流体MHD量,成功地再现了非理想电场的空间结构和强度,从而为提高电阻MHD模拟中的重联率提供了一种有前途的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effective Resistivity in Relativistic Reconnection: A Prescription Based on Fully Kinetic Simulations
A variety of high-energy astrophysical phenomena are powered by the release—via magnetic reconnection—of the energy stored in oppositely directed fields. Single-fluid resistive magnetohydrodynamic (MHD) simulations with uniform resistivity yield dissipation rates that are much lower (by nearly 1 order of magnitude) than equivalent kinetic calculations. Reconnection-driven phenomena could be accordingly modeled in resistive MHD employing a nonuniform, “effective” resistivity informed by kinetic calculations. In this work, we analyze a suite of fully kinetic particle-in-cell (PIC) simulations of relativistic pair-plasma reconnection—where the magnetic energy is greater than the rest mass energy—for different strengths of the guide field orthogonal to the alternating component. We extract an empirical prescription for the effective resistivity, , where B0 is the reconnecting magnetic field strength, J is the current density, nt is the lab-frame total number density, e is the elementary charge, and c is the speed of light. The guide field dependence is encoded in α and p, which we fit to PIC data. This resistivity formulation—which relies only on single-fluid MHD quantities—successfully reproduces the spatial structure and strength of nonideal electric fields and thus provides a promising strategy for enhancing the reconnection rate in resistive MHD simulations.
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