2014年9月12日地磁暴期间辐射带电子丢失的损失机制

IF 2.9 3区 地球科学 Earth and Planetary Physics Pub Date : 2020-11-16 DOI:10.26464/epp2020060
Xin Ma, Zheng Xiang, BinBin Ni, Song Fu, Xing Cao, Man Hua, DeYu Guo, YingJie Guo, XuDong Gu, ZeYuan Liu, Qi Zhu
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引用次数: 20

摘要

辐射带电子衰减表明磁暴期间电子通量衰减到背景水平,这通常归因于波致俯仰角散射和磁层顶遮蔽的影响。为了研究2014年9月12日太阳风动压脉冲事件引发的辐射带电子衰减的损失机制,我们综合分析了范艾伦探测器的粒子和波测量结果。将辍学事件分为三个阶段:风暴前阶段、风暴初期阶段和风暴主要阶段。研究了该风暴初始阶段和主阶段的电子俯仰角分布(PADs)和电子通量差,分析了电子相空间密度(PSD)径向分布的演变和电子相空间差(μ, K和L*为三个绝热不变量)与(μ, K)的依赖关系。L >处电子的能量无关衰变;4.5伴有蝴蝶型pad,表明磁层顶遮蔽过程可能是风暴初始阶段的主要损失机制;4.5. 在L <下,仅在1 MeV的电子中观察到电子dropout和90°峰PADs的特征;4,表明在风暴主阶段,波致散射效应可能主导了下l壳层的电子损失过程。对电子PSD下降(μ, K)依赖性的评价和H+波段电磁离子回旋波(EMIC)最小电子共振能量的计算支持了在L* = 3.9附近观测到的PSD下降峰可能主要是由EMIC波散射引起的,而在L* = 4.6附近观测到的PSD下降峰可能是由EMIC波散射和向外径向扩散共同引起的。
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On the loss mechanisms of radiation belt electron dropouts during the 12 September 2014 geomagnetic storm

Radiation belt electron dropouts indicate electron flux decay to the background level during geomagnetic storms, which is commonly attributed to the effects of wave-induced pitch angle scattering and magnetopause shadowing. To investigate the loss mechanisms of radiation belt electron dropouts triggered by a solar wind dynamic pressure pulse event on 12 September 2014, we comprehensively analyzed the particle and wave measurements from Van Allen Probes. The dropout event was divided into three periods: before the storm, the initial phase of the storm, and the main phase of the storm. The electron pitch angle distributions (PADs) and electron flux dropouts during the initial and main phases of this storm were investigated, and the evolution of the radial profile of electron phase space density (PSD) and the (μ, K) dependence of electron PSD dropouts (where μ, K, and L* are the three adiabatic invariants) were analyzed. The energy-independent decay of electrons at L > 4.5 was accompanied by butterfly PADs, suggesting that the magnetopause shadowing process may be the major loss mechanism during the initial phase of the storm at L > 4.5. The features of electron dropouts and 90°-peaked PADs were observed only for >1 MeV electrons at L < 4, indicating that the wave-induced scattering effect may dominate the electron loss processes at the lower L-shell during the main phase of the storm. Evaluations of the (μ, K) dependence of electron PSD drops and calculations of the minimum electron resonant energies of H+-band electromagnetic ion cyclotron (EMIC) waves support the scenario that the observed PSD drop peaks around L* = 3.9 may be caused mainly by the scattering of EMIC waves, whereas the drop peaks around L* = 4.6 may result from a combination of EMIC wave scattering and outward radial diffusion.

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