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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Adiabatic acceleration of suprathermal electrons associated with dipolarization fronts
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Adiabatic acceleration of suprathermal electrons associated with dipolarization fronts

机译:绝热加速suprathermal电子与dipolarization相关方面

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Recent observations in the inner magnetotail have shown rapid and significant flux increases (usually an order of magnitude of increase within seconds) of suprathermal electrons (tens of keV to hundreds of keV) associated with earthward moving dipolarization fronts. To explain where and how these suprathermal electrons are produced during substorm intervals, two types of acceleration models have been suggested by previous studies: acceleration that localizes near the reconnection site and acceleration that occurs during earthward transport. We perform an analytical analysis of adiabatic acceleration to show that the slope of source differential fluxes is critical for understanding adiabatic flux enhancements during earthward transport. Observationally, two earthward propagating dipolarization fronts accompanied by energetic electron flux enhancements observed by the THEMIS spacecraft have been analyzed; in each event the properties of dipolarization fronts in the inner magnetosphere (X_(GSM)-10R_E) were well correlated with those further down the tail (X_(GSM)-15R_E or X_(GSM)- 20R_E). Coupled with theoretical analysis, this enables us to estimate the relative acceleration that occurred as the electrons propagated earthward between the two spacecraft. During the two events studied, the differential fluxes of supra thermal electrons had steep energy spectra with power law indices of-4 to-6.These spectra were much steeper than those at lower energy, as well as those of the supra thermal electrons observed before the fronts arrived. A compression factor of 1.5 as the electrons propagated earthward induced a flux increase of suprathermal electrons by a factor of 7 to 17. Provided these steep spectra, we demonstrate that adiabatic acceleration from the betatron and Fermi mechanisms simultaneously operating can account for these flux increases. Since both analytical analysis and data from the two events show that adiabatic acceleration during earthward transport does not significantly change the power law indices, the steep spectra were likely to be traced back to their source region, presumably near the reconnection site.
机译:最近的观察内磁尾显示快速和显著的通量增加(通常是一个数量级的提高数万keV suprathermal电子(秒)数以百计的keV)向地面dipolarization方面移动。和这些suprathermal电子是如何产生的在亚暴间隔,两种类型的提出了加速度模型先前的研究:加速度所在重新连接站点附近和加速度发生在向地面运输。分析分析的绝热加速显示源微分通量的斜率对理解绝热通量至关重要吗增强在向地面运输。根据观察,两个向地面的传播dipolarization方面伴随着精力充沛忒弥斯电子通量增强观察分析了航天器;dipolarization方面的内在属性磁气圈(间(GSM) -10 r_e)与那些在尾巴(间(GSM) -15 r_e或间(GSM) - 20 r_e)。理论分析,这使我们能够评估相对加速度的发生电子传播向地面宇宙飞船。上热通量差电子有陡峭的能量谱幂律指数吗4到6。这些较低的能量,以及那些的上热电子前观察方面来了。电子传播向地面的诱导通量增加suprathermal电子的一个因素7 - 17所示。证明绝热的加速度同时电子感应加速器和费米机制操作可以占这些通量增加。因为分析的分析和数据两个事件表明,绝热加速在向地面传输并不显著变化的幂律指数、陡峭的光谱可能追溯到他们的来源吗附近的地区,可能重新连接站点。

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