弱至L* < 4.0的MeV电子外辐射带非风暴侵蚀与太阳风密度的连续增强有关

IF 2.9 3区 地球科学 Earth and Planetary Physics Pub Date : 2021-12-21 DOI:10.26464/epp2021051
Ying Xiong, Lun Xie, SuiYan Fu, BinBin Ni, ZuYin Pu
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引用次数: 1

摘要

本文报道了2015年11月27日~ 30日连续三次太阳风数密度增强(SWDEs)期间外区MeV电子分布的异常非风暴侵蚀事件。MeV电子损失和能量依赖性电子俯仰角分布(PAD)首先出现在L* = 5.5,然后向下移动到L* <4. 根据电子相空间密度(PSD)分布的演化,在L* >处,小螺距角的电子损失;在SWDE1期间,主要由向外径向扩散引起。然而,在SWDE2&3中,主位波的散射损失在4 <处占主导地位;L * & lt;5. 对于大俯仰角的电子,向外径向扩散是所有swde的主要损失机制,这与最后闭合漂移壳层(LCDS)的侵入一致。Van Allen探测器和地面站观测到,从SWDE1到swde2 & 3,源波活动的内缘分别从L* ~5向L* ~4和从L ~6.4向L ~4.2移动。这与从L* = 4.5到L* = 3.5的各向异性高能质子向内侵彻是一致的,表明主位波的向内扩展可能是由致密等离子体片向内注入的各向异性高能质子驱动的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Non-storm erosion of MeV electron outer radiation belt down to L* < 4.0 associated with successive enhancements of solar wind density

We report an unusual non-storm erosion event of outer zone MeV electron distribution during three successive solar wind number density enhancements (SWDEs) on November 27−30, 2015. Loss of MeV electrons and energy-dependent narrowing of electron pitch angle distributions (PAD) first developed at L* = 5.5 and then moved down to L* < 4. According to the evolution of the electron phase space density (PSD) profile, losses of electrons with small pitch angles at L* > 4 during SWDE1 are mainly due to outward radial diffusion. However during SWDE2&3, scattering loss due to EMIC waves is dominant at 4 < L* < 5. As for electrons with large pitch angles, outward radial diffusion is the primary loss mechanism throughout all SWDEs which is consistent with the incursion of the Last Closed Drift Shell (LCDS). The inner edge of EMIC wave activity moved from L* ~5 to L* ~4 and from L ~6.4 to L ~4.2 from SWDE1 to SWDE2&3, respectively, observed by Van Allen Probes and by ground stations. This is consistent with the inward penetration of anisotropic energetic protons fromL* = 4.5 to L* = 3.5, suggesting that the inward extension of EMIC waves may be driven by the inward injection of anisotropic energetic protons from the dense plasma sheet.

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Earth and Planetary Physics
Earth and Planetary Physics GEOSCIENCES, MULTIDISCIPLINARY-
自引率
17.20%
发文量
174
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