Dawn-dusk asymmetries in the auroral particle precipitation and their modulations by substorms

S. Wing, J. Johnson, E. Camporeale
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引用次数: 2

Abstract

textabstractAuroral particle precipitation exhibits dawn-dusk asymmetries that reflect the asymmetries in the particle populations, waves, and processes in the magnetosphere. The diffuse auroral electrons can be observed mainly in 22:00 – 09:00 MLT, which coincides much with the spatial distribution of the whistler-mode chorus waves that have been shown to be the predominant mechanism for pitch-angle scatterring magnetospheric electrons into the loss cone. On the other hand, the monoenergetic auroral electrons can be observed at dusk-midnight sector. The monoenergetic electrons are magnetospheric electrons that have gone through a quasi-static parallel electric field in the upward field-aligned current regions. The broadband auroral electrons can be found mostly at 22:00 – 02:00 MLT where a peak in the Poynting flux of Alfven waves is observed. Alfven waves are known to cause broadband acceleration of electrons. There may be a connection between monoenergetic and broadband electrons in that the low frequency Alfven wave–electron interaction can result in monoenergetic electron signature. Substorms increase the power of the diffuse, monoenergetic, and broadband electron aurora by 310%, 71%, and 170%, respectively. The duration of the substorm cycle for monenergetic and broadband auroral is ~5 hr, but it is larger than 5 hr for diffuse auroral electrons.
极光粒子降水的黎明-黄昏不对称性及其受亚暴的调制
大气粒子降水呈现出黎明-黄昏的不对称性,这反映了磁层中粒子数量、波和过程的不对称性。弥漫性极光电子主要出现在22点~ 9点,这与哨声模式合唱波的空间分布非常吻合,哨声模式合唱波是俯角散射磁层电子进入损耗锥的主要机制。另一方面,单能量的极光电子可以在黄昏-午夜扇区被观察到。单能电子是磁层电子,它们在向上场对准的电流区域中经历了准静态平行电场。宽频带极光电子主要出现在22:00 - 02:00 MLT,在此期间阿尔芬波的波印亭通量出现峰值。众所周知,阿尔芬波会引起电子的宽带加速。单能电子与宽带电子之间可能存在联系,低频阿尔芬波与电子相互作用可导致单能电子的特征。亚暴使漫射、单能和宽带电子极光的能量分别增加310%、71%和170%。单能和宽带极光的亚暴周期持续时间约为5小时,而漫射极光电子的亚暴周期持续时间大于5小时。
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