首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Time-Varying Magnetopause Reconnection During Sudden Commencement: Global MHD Simulations
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Time-Varying Magnetopause Reconnection During Sudden Commencement: Global MHD Simulations

机译:时变的磁重联过程中突然开始:全球磁流体动力模拟

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In response to a solar wind dynamic pressure enhancement, the compression of the magnetosphere generates strong ionospheric signatures and a sharp variation in the ground magnetic field, termed sudden commencement (SC). While such compressions have also been associated with a contraction of the ionospheric polar cap due to the triggering of reconnection in the magnetotail, the effect of any changes in dayside reconnection is less clear and is a key component in fully understanding the system response. In this study, we explore the time-dependent nature of dayside coupling during SC by performing global simulations using the Gorgon magnetohydrodynamic code and impact the magnetosphere with a series of interplanetary shocks with different parameters. We identify the location and evolution of the reconnection region in each case as the shock propagates through the magnetosphere, finding strong enhancement in the dayside reconnection rate and prompt expansion of the dayside polar cap prior to the eventual triggering of tail reconnection. This effect pervades for a variety of interplanetary magnetic field orientations, and the reconnection rate is most enhanced for events with higher dynamic pressure. We explain this by repeating the simulations with a large explicit resistivity, showing that compression of the magnetosheath plasma near the propagating shock front allows for reconnection of much greater intensity and at different locations on the dayside magnetopause than during typical solar wind conditions. The results indicate that the dynamic behavior of dayside coupling may render steady models of reconnection inaccurate during the onset of a severe space weather event.
机译:在回答太阳风动态压力增强,磁气圈的压缩产生强烈的电离层和签名地面急剧变化磁场,称为突然开始(SC)。按压也被关联到一个电离层极冠由于收缩触发的重新连接磁尾的光面的任何变化的影响重新连接是不太清楚,是一个关键的组件在充分理解系统响应。这项研究中,我们探索时间自然在SC通过执行的光面耦合全球使用Gorgon模拟磁流体动力代码和影响磁气圈与一系列的星际冲击与不同的参数。重新连接区域的位置和演变在每种情况下冲击传播通过磁气圈,找到强大的增强的光面重联率和迅速的扩张最终前昼极地冰冠触发的尾巴重新连接。渗透到各种星际磁场场方向,重新连接速度大多数增强与高动态事件压力。模拟,明确的电阻率,显示压缩的磁鞘传播附近等离子体激震前沿重新连接的更大的强度和不同位置的光面上磁层比普通的太阳风条件。结果表明,动态的行为的光面耦合可能呈现稳定的模型重新连接在出现一个不准确的严重的空间天气事件。

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