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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Relativistic electron response to the combined magnetospheric impact of a coronal mass ejection overlapping with a high-speed stream: Van Allen Probes observations
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Relativistic electron response to the combined magnetospheric impact of a coronal mass ejection overlapping with a high-speed stream: Van Allen Probes observations

机译:相对论性电子反应的总和日冕物质抛射的磁性层的影响重叠的高速流:范-艾伦探测器的观测

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During early November 2013, the magnetosphere experienced concurrent driving by a coronal mass ejection (CME) during an ongoing high-speed stream (HSS) event. The relativistic electron response to these two kinds of drivers, i.e., HSS and CME, is typically different, with the former often leading to a slower buildup of electrons at larger radial distances, while the latter energizing electrons rapidly with flux enhancements occurring closer to the Earth. We present a detailed analysis of the relativistic electron response including radial profiles of phase space density as observed by both Magnetic Electron and Ion Sensor (MagEIS) and Relativistic Electron Proton Telescope instruments on the Van Allen Probes mission. Data from the MagEIS instrument establish the behavior of lower energy (<1 MeV) electrons which span both intermediary and seed populations during electron energization. Measurements characterizing the plasma waves and magnetospheric electric and magnetic fields during this period are obtained by the Electric and Magnetic Field Instrument Suite and Integrated Science instrument on board Van Allen Probes, Search Coil Magnetometer and Flux Gate Magnetometer instruments on board Time History of Events and Macroscale Interactions during Substorms, and the low-altitude Polar-orbiting Operational Environmental Satellites. These observations suggest that during this time period, both radial transport and local in situ processes are involved in the energization of electrons. The energization attributable to radial diffusion is most clearly evident for the lower energy (<1 MeV) electrons, while the effects of in situ energization by interaction of chorus waves are prominent in the higher-energy electrons.
机译:在2013年11月初,磁气圈经历了由日冕物质并发驾驶在一个持续的高速抛射(CME)流(HSS)事件。应对这两种驱动程序,也就是,高速钢和芝加哥商品交易所,通常是不同的,前者的电子往往导致较慢的积累更大的径向距离,而后者激励电子通量迅速增强发生接近地球。相对论性的详细分析电子响应包括径向配置文件相空间密度所观察到的磁性电子和离子传感器(MagEIS)和相对论在范电子质子望远镜的仪器艾伦探测任务。仪器建立低能量的行为(< 1兆电子伏)电子跨两个中介在电子和种子数量通电。等离子体波和磁性层的电气和磁场在此期间电场和磁场的仪器套件和综合科学仪器范艾伦辐射探测器,搜索线圈磁强计和磁通门磁强计的仪器上的历史事件和宏观尺度相互作用在为亚暴,低空极轨运行环境卫星。在这个时期,两个径向运输和当地的原位过程参与激发的电子。由于径向扩散是最明显的明显的低能量(< 1兆电子伏)电子,而原位激发的影响合唱波的相互作用是显著的高能电子。

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