首页> 外文期刊>Journal of Geophysical Research. Biogeosciences >Multipoint Observations of Energetic Particle Injections and Substorm Activity During a Conjunction Between Magnetospheric Multiscale (MMS) and Van Allen Probes
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Multipoint Observations of Energetic Particle Injections and Substorm Activity During a Conjunction Between Magnetospheric Multiscale (MMS) and Van Allen Probes

机译:在磁磁性多尺度(MMS)和范例探针之间的结合期间的多点观察能量颗粒注射和代侵动

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This study examines multipoint observations during a conjunction between Magnetospheric Multiscale (MMS) and Van Allen Probes on 7 April 2016 in which a series of energetic particle injections occurred. With complementary data from Time History of Events and Macroscale Interactions during Substorms, Geotail, and Los Alamos National Laboratory spacecraft in geosynchronous orbit (16 spacecraft in total), we develop new insights on the nature of energetic particle injections associated with substorm activity. Despite this case involving only weak substorm activity (maximum AE <300 nT) during quiet geomagnetic conditions in steady, below-average solar wind, a complex series of at least six different electron injections was observed throughout the system. Intriguingly, only one corresponding ion injection was clearly observed. All ion and electron injections were observed at <600 keV only. MMS reveals detailed substructure within the largest electron injection. A relationship between injected electrons with energy <60 keV and enhanced whistler mode chorus wave activity is also established from Van Allen Probes and MMS. Drift mapping using a simplified magnetic field model provides estimates of the dispersionless injection boundary locations as a function of universal time, magnetic local time, and L shell. The analysis reveals that at least five electron injections, which were localized in magnetic local time, preceded a larger injection of both electrons and ions across nearly the entire nightside of the magnetosphere near geosynchronous orbit. The larger ion and electron injection did not penetrate to L < 6.6, but several of the smaller electron injections penetrated to L < 6.6. Due to the discrepancy between the number, penetration depth, and complexity of electron versus ion injections, this event presents challenges to the current conceptual models of energetic particle injections.
机译:本研究在2016年4月7日在磁体多尺度(MMS)和Van Allen探针的结合期间检查了多点观测,其中发生了一系列能量粒子注射。随着亚暴,GEOTAIL期间活动的时间历程和大尺度互动互补数据,并在地球同步轨道(16飞船总)洛斯阿拉莫斯国家实验室的航天器,我们开发与亚暴活动有关的高能粒子注入性质的新见解。尽管这种情况涉及在稳定的静态地磁条件下的弱碎质条件下(最大AE <300nt),但在整个系统中观察到一系列复杂的至少六种不同的电子喷射。有趣的是,清楚地观察到一个相应的离子注射。在<600keV中观察到所有离子和电子注射。 MMS显示最大电子注入内的详细子结构。还从VAN ALLEN探针和MMS建立了具有能量<60keV和增强吹口机模式合唱活性的注射电子之间的关系。使用简化磁场模型的漂移映射提供了作为通用时间,磁性局部时间和L壳体的函数的分散注入边界位置的估计。该分析表明,在磁性局部时间局部局部地定位的至少五种电子注入,在GeoSynchonous轨道附近的磁性层的几乎整个夜间横跨整个夜间注射了电子和离子。较大的离子和电子注入没有渗透到L <6.6,但是较小的电子注入较小的较小电子注入渗透到L <6.6。由于数量之间的差异,渗透深度和电子对离子注射的复杂性,该事件对电脑粒子注射的当前概念模型提供了挑战。

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