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Electron radiation belt dynamics during magnetic storms and in quiet time

机译:电子辐射带在电磁风暴和安静时间内的动力学

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The paper discusses the dynamics of the outer electron belt, adiabatic and nonadiabatic mechanisms of replenishment and losses of energetic electrons.Under undisturbed conditions, the outer electron belt gradually empties: in the inner magnetosphere due to electron precipitation in the atmosphere and in the quasi-trapping region due to losses at the magnetopause because drift shells of electrons are not closed there. The latter process does not occur in normal years due to the masking replenishment by freshly accelerated particles, but in years of extremely low activity it leads to a significant decrease in the electron population of the belt.During the magnetic storm main phase, the first reason for the decrease in the electron flux intensity is the adiabatic cooling associated with conservation of adiabatic invariants and complemented by precipitation of electrons into the atmosphere and their dropout at the magnetopause. Electron flux increases involve E?B electron injection by the induction electric field of substorm activation and by the large-scale solar wind electric field, with pitch energy diffusion along with adiabatic heating in the recovery phase.The rate of electron flux recovery after a storm is determined by the ratio of nonadiabatic increases and losses; hence the electron flux represents a continuous series from low to very high values. The combination of these processes determines the individual character of radiation belt development during each magnetic storm and the behavior of the belt in the quiet time.
机译:本文讨论了外部电子带的动力学,绝热和绝热的补充机制以及高能电子的损失。在不受干扰的条件下,外部电子带逐渐排空:在内部磁层中,由于大气中的电子沉淀以及在准磁层中由于电子的漂移壳没有在那里封闭,所以由于磁致绝经的损耗而导致的俘获区域。后一过程在正常年份中不会发生,这是由于新近加速的颗粒对掩膜的补充,但是在极低活性的年份中,它导致了带束层中电子的显着减少。在磁暴主相期间,第一个原因是电子通量强度下降的原因是绝热冷却,它与绝热不变量的守恒有关,并辅以电子向大气中的沉淀以及它们在磁停顶处的脱落。电子通量的增加涉及亚暴风暴激活的感应电场和大规模太阳风电场的E?B电子注入,在恢复阶段伴随着沥青能量的扩散以及绝热的加热。由非绝热增加和损失的比率确定;因此,电子通量代表了从低到高的连续序列。这些过程的组合决定了每次磁暴期间辐射带发展的独特特征以及在安静时间内辐射带的行为。

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