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Prompt energization of relativistic and highly relativistic electrons during a substorm interval

机译:在亚暴期间及时激发相对论和高度相对论的电子

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On 17 March 2013, a large magnetic storm significantly depleted the multi-MeV radiation belt. We present multi-instrument observations from the Van Allen Probes spacecraft Radiation Belt Storm Probe A and Radiation Belt Storm Probe B at ∼6 Re in the midnight sector magnetosphere and from ground-based ionospheric sensors during a substorm dipolarization followed by rapid reenergization of multi-MeV electrons [1]. A 50% increase in magnetic field magnitude occurred simultaneously with dramatic increases in 100 keV electron fluxes and a 100 times increase in VLF wave intensity. Chorus is excited following the injection of low-energy (1–30 keV) plasma sheet electrons into the inner magnetosphere [2]. During the 17 March substorm injection, cold plasma that had circulated into the nightside magnetosphere from the dayside ionosphere-plasmasphere contributed to an energetic (50 keV) electron population involved in chorus-mode wave amplification [3]. The high-energy tail (>100 keV) of the injected electrons and the intense VLF waves provide a seed population and energy source for subsequent radiation belt energization. The observed electron flux behavior is striking in its large increases over short intervals. As seen by RBSP-A at L∗ ∼ 4.5 highly relativistic (>2MeV) electron fluxes increased immediately at the time of the substorm injection and strong chorus enhancement. At RBSP-B, at apogee at substorm onset, observed in the ∼5 h separation between L∗ = 4.0 crossings, 3.60 MeV highly relativistic electron fluxes increased by a factor of 56, while 4.50 MeV flux increased by an even larger factor of 95. The 17 March multipoint observations indicate the significant role that substorm processes can play in creating a seed population of 100 keV electrons and VLF chorus wave enhancements that can lead to a prompt energization of relativistic and highly relativistic electrons in the region outside the plasm- pause.
机译:2013年3月17日,一场大磁暴极大地耗尽了多MeV辐射带。我们将在午夜扇形磁层中约6 Re时从Van Allen Probes航天器辐射带风暴探测器A和辐射带风暴探测器B以及地面电离层传感器提供的多仪器观测结果,进行亚风暴​​双极化,然后对多个MeV电子[1]。磁场强度增加了50%,同时100 keV电子通量急剧增加,而VLF波强度增加了100倍。向内部磁层注入低能(1–30 keV)等离子薄片电子后,合唱团会兴奋[2]。在3月17日的亚暴注入过程中,冷的等离子体从白天的电离层-等离子层流到了夜间的磁层中,从而促进了高能(50 keV)电子的参与,并参与了合模波放大[3]。注入的电子的高能尾部(> 100 keV)和强烈的VLF波为随后的辐射带激发提供了种子种群和能量来源。观察到的电子通量行为在短时间内大幅增加。如RBSP-A在L ∗〜4.5处所见,在亚暴注入和强烈的合唱增强时,高相对论(> 2MeV)电子通量立即增加。在RBSP-B处,在亚暴爆发的最高点,在L ∗ = 4.0穿越之间的约5 h间隔中观察到,3.60 MeV高相对论电子通量增加了56倍,而4.50 MeV通量增加了甚至更大的95倍。3月17日的多点观测表明,亚暴过程可在产生100 keV电子和VLF合唱波增强的种子种群中发挥重要作用,这可导致等离子暂停之外区域的相对论和高度相对论电子迅速通电。 。

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