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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Effects of the fast plasma sheet flow on the geosynchronous magnetic configuration: Geotail and GOES coordinated study
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Effects of the fast plasma sheet flow on the geosynchronous magnetic configuration: Geotail and GOES coordinated study

机译:快速等离子体片流的影响同步磁配置:Geotail并协调研究

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The present study statistically examines how (or if) the geosynchronous (GOES) magnetic field responds to fast earthward flow observed by the Geotail satellite in the plasma sheet. The change of the GOES H (north-south) component within 15 min of the detection of fast flows, ΔH, is used as a primary measure of the geosynchronous response. It is found that following the detection of fast flows, the geosynchronous magnetic field rarely dipolarizes, but it often becomes more stretched, which is manifested by negative ΔH. This H decrease is not accompanied by any correlated variation of the D (azimuthal) component, suggesting that the associated stretching is not an edge effect of the substorm current wedge formation, but it can be attributed to the intensification of the local tail current. No systematic dependence of ΔH on the satellite separation can be found. On the other hand, the geosynchronous magnetic field tends to dipolarize if it is already stretched significantly, although the associated changes in the H and V (radial) components are not much larger than those in events that are not preconditioned. The flow intensity does not seem to be a controlling factor, either. However, caution needs to be exercised because the present study is not able to address the azimuthal structure of the fast flow. It is concluded that in most events the fast plasma flow does not reach geosynchronous orbit and that the generation of the fast plasma flow in the plasma sheet is not sufficient for causing geosynchronous dipolarization.
机译:本研究统计检验(或怎样如果)同步()磁场响应迅速向地面观测的流动Geotail卫星在等离子体表。的H(南北)组件在15最小检测的快速流动,ΔH,使用同步的主要措施响应。检测的快速流动,同步磁场dipolarizes很少,但是它经常变得更加紧张,所体现的负ΔH。任何相关变化的D(方位)组件,建议相关的伸展运动不是一个亚暴的边缘效应当前楔的形成,但这可以归结的强化当地尾电流。没有系统的依赖卫星ΔH可以找到分离。同步轨道磁场倾向于dipolarize如果它已经明显拉长,尽管H和V的变化有关(径向)组件并不比这些事件不是先决条件。流强度似乎并没有控制因素。因为目前的研究不能执行快速解决的方位结构流。快速等离子体流不达到同步轨道,快速的生成等离子体流等离子体单是不够的导致同步dipolarization。

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