Xianglei He, Aaohua Mao, S. Apatenkov, Zhonglin Zhang, Zhibin Wang, Mengmeng Sun, Jitong Zou, Xiaogang Wang
{"title":"Numerical analysis of three-dimensional magnetopause-like reconnection properties by Hall MHD simulation for SPERF-AREX","authors":"Xianglei He, Aaohua Mao, S. Apatenkov, Zhonglin Zhang, Zhibin Wang, Mengmeng Sun, Jitong Zou, Xiaogang Wang","doi":"10.1063/5.0213566","DOIUrl":null,"url":null,"abstract":"The ground-based device, the Space Plasma Environment Research Facility (SPERF), is established for experimentally simulating magnetosphere plasma processes, with one of its major components, asymmetric reconnection experiment (AREX), for three-dimensional physics relevant to dayside asymmetric magnetopause reconnection. As an outstanding property of fast magnetic reconnection in collisionless plasmas, the Hall effect and its geometric features can be experimentally investigated in SPERF-AREX with various magnetic configurations related to different driven scenarios for simulating interplanetary magnetic field (IMF) conditions. In this work, the Hall effect and its geometric characteristics in such proposed experiments are numerically studied based on a Hall MHD model. The simulation results reveal that in the X-line geometry relevant to southward IMFs, the Hall field features in cross section perpendicular to the X-line are mostly analogous to typical two-dimensional Hall quadrupole structures, clearly an “anti-parallel reconnection” feature. In the separator (A-B null-line) geometry relevant to arbitrary IMF orientations, along the separator between magnetic nulls, the magnetic field configuration near a magnetic null also demonstrates the typical quadrupolar pattern. However, the pattern is distorted away (>10di, here di=c/ωpi is the ion inertial length) from the nulls, in a way similar to that in “component reconnection.” Furthermore, the Hall effect induces a dawn-dusk asymmetry for both the X-line and the separator geometries.","PeriodicalId":510396,"journal":{"name":"Physics of Plasmas","volume":"313 3","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Physics of Plasmas","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1063/5.0213566","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The ground-based device, the Space Plasma Environment Research Facility (SPERF), is established for experimentally simulating magnetosphere plasma processes, with one of its major components, asymmetric reconnection experiment (AREX), for three-dimensional physics relevant to dayside asymmetric magnetopause reconnection. As an outstanding property of fast magnetic reconnection in collisionless plasmas, the Hall effect and its geometric features can be experimentally investigated in SPERF-AREX with various magnetic configurations related to different driven scenarios for simulating interplanetary magnetic field (IMF) conditions. In this work, the Hall effect and its geometric characteristics in such proposed experiments are numerically studied based on a Hall MHD model. The simulation results reveal that in the X-line geometry relevant to southward IMFs, the Hall field features in cross section perpendicular to the X-line are mostly analogous to typical two-dimensional Hall quadrupole structures, clearly an “anti-parallel reconnection” feature. In the separator (A-B null-line) geometry relevant to arbitrary IMF orientations, along the separator between magnetic nulls, the magnetic field configuration near a magnetic null also demonstrates the typical quadrupolar pattern. However, the pattern is distorted away (>10di, here di=c/ωpi is the ion inertial length) from the nulls, in a way similar to that in “component reconnection.” Furthermore, the Hall effect induces a dawn-dusk asymmetry for both the X-line and the separator geometries.
空间等离子体环境研究设施(Space Plasma Environment Research Facility,SPERF)是为实验模拟磁层等离子体过程而建立的地面装置,其主要组成部分之一是非对称再连接实验(AREX),用于与日侧非对称磁层顶再连接相关的三维物理学。霍尔效应及其几何特征是无碰撞等离子体中快速磁性再连接的一个突出特性,可在 SPERF-AREX 中通过与不同驱动情景相关的各种磁性配置进行实验研究,以模拟行星际磁场(IMF)条件。在这项工作中,基于霍尔 MHD 模型,对拟议实验中的霍尔效应及其几何特征进行了数值研究。模拟结果表明,在与南向 IMF 有关的 X 线几何中,与 X 线垂直的横截面上的霍尔场特征大多类似于典型的二维霍尔四极结构,显然是一种 "反平行再连接 "特征。在与任意 IMF 方向相关的分离器(A-B 空线)几何中,沿着磁空之间的分离器,磁空附近的磁场配置也显示出典型的四极模式。然而,该模式在远离磁极(>10di,此处 di=c/ωpi 为离子惯性长度)的地方发生了扭曲,其方式与 "分量再连接 "类似。此外,霍尔效应还导致 X 线和分离器的几何形状出现黎明-黄昏不对称现象。