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Energization of the Ring Current by Substorms

机译:副风暴使环流通电

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摘要

The substorm process releases large amounts of energy into the magnetospheric system, although where the energy is transferred to and how it is partitioned remains an open question. In this study, we address whether the substorm process contributes a significant amount of energy to the ring current. The ring current is a highly variable region, and understanding the energization processes provides valuable insight into how substorm‐ring current coupling may contribute to the generation of storm conditions and provide a source of energy for wave driving. In order to quantify the energy input into the ring current during the substorm process, we analyze Radiation Belt Storm Probes Ion Composition Experiment and Helium Oxygen Proton Electron ion flux measurements for H+, O+, and He+. The energy content of the ring current is estimated and binned spatially for L and magnetic local time. The results are combined with an independently derived substorm event list to perform a statistical analysis of variations in the ring current energy content with substorm phase. We show that the ring current energy is significantly higher in the expansion phase compared to the growth phase, with the energy enhancement persisting into the substorm recovery phase. The characteristics of the energy enhancement suggest the injection of energized ions from the tail plasma sheet following substorm onset. The local time variations indicate a loss of energetic H+ ions in the afternoon sector, likely due to wave‐particle interactions. Overall, we find that the average energy input into the ring current is ∼9% of the previously reported energy released during substorms.
机译:亚暴过程将大量能量释放到磁层系统中,尽管能量转移到何处以及如何分配仍然是一个悬而未决的问题。在这项研究中,我们探讨了亚暴过程是否为环流贡献了大量能量。环形电流是一个高度可变的区域,了解通电过程可以提供宝贵的见解,以了解亚风暴-环形电流耦合如何有助于产生风暴条件并为波浪驱动提供能量。为了量化在亚暴过程中输入到环流中的能量,我们分析了辐射带暴风探针的离子组成实验和氦氧质子电子离子通量的H + ,O + < / sup>和He + 。估计环形电流的能量含量,并在空间上对L和磁性本地时间进行分类。将结果与独立导出的亚暴事件列表结合,以对亚暴阶段的环形电流能量含量变化进行统计分析。我们显示,与增长阶段相比,膨胀阶段的环流能量明显更高,并且能量增强一直持续到亚暴雨恢复阶段。能量增强的特征表明,在亚暴开始后,从尾部等离子体薄层中注入了活化离子。局部时间变化表明,可能是由于波粒相互作用,导致下午区域高能H + 离子的流失。总的来说,我们发现输入到环流中的平均能量约为先前报道的在亚暴期间释放的能量的9%。

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