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Magnetohydrodynamic With Embedded Particle‐In‐Cell Simulation of the Geospace Environment Modeling Dayside Kinetic Processes Challenge Event

机译:磁力流体动力学,具有地球合区环境建模的嵌入式粒子内仿真花清液过程挑战事件

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We use the magnetohydrodynamic (MHD) with embedded particle‐in‐cell model (MHD‐EPIC) to study the Geospace Environment Modeling (GEM) dayside kinetic processes challenge event at 01:50–03:00?UT on 18 November 2015, when the magnetosphere was driven by a steady southward interplanetary magnetic field (IMF). In the MHD‐EPIC simulation, the dayside magnetopause is covered by a PIC code so that the dayside reconnection is properly handled. We compare the magnetic fields and the plasma profiles of the magnetopause crossing with the MMS3 spacecraft observations. Most variables match the observations well in the magnetosphere, in the magnetosheath, and also during the current sheet crossing. The MHD‐EPIC simulation produces flux ropes, and we demonstrate that some magnetic field and plasma features observed by the MMS3 spacecraft can be reproduced by a flux rope crossing event. We use an algorithm to automatically identify the reconnection sites from the simulation results. It turns out that there are usually multiple X‐lines at the magnetopause. By tracing the locations of the X‐lines, we find that the typical moving speed of the X‐line endpoints is about 70?km/s, which is higher than but still comparable with the ground‐based observations.
机译:我们使用磁力动力学(MHD)与嵌入式粒子内模型(MHD-EPIC)研究地球合区环境建模(GEM)STENEIDES动力学过程挑战事件于2015年11月18日,何时在01:50-03:00?ut磁影由稳定向南行星磁场(IMF)驱动。在MHD-EPIC仿真中,CASEIDE MARECOPAUE被PIC代码覆盖,以便正确处理STANEIDE重新连接。我们比较磁场和磁页的等离子体轮廓与MMS3航天器观察。大多数变量与磁性影片中的观察结果相匹配,在磁性影片中,以及在当前纸张交叉期间。 MHD-EPIC仿真产生磁通绳索,我们证明了MMS3航天器观察到的一些磁场和等离子体特征可以通过磁通绳交叉事件再现。我们使用算法自动识别模拟结果中的重新连接站点。事实证明,磁页中通常存在多个X线。通过追踪X线的位置,发现X线端点的典型移动速度约为70Ωkm / s,其高于但仍然与基于地面的观察结果相当。

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