A. A. Saikin, A. Y. Drozdov, A. N. Jaynes, D. Kondrashov, A. Boyd, Y. Y. Shprits
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引用次数: 0
摘要
在范艾伦探测器时代,观察到几个多兆电子伏(>;4兆电子伏)的电子通量增强。电子加速到多兆电子伏的原因仍然是一个持续的科学话题。在这项研究中,我们重点研究了相空间密度(PSD)径向轮廓形状与多mev电子通量增强事件发生之间的关系。这将决定哪个过程(局部加速或径向扩散)在产生特定L*的多mev电子通量增强中占主导地位。PSD径向剖面的增长峰与多mev电子的局部加速(即波粒相互作用)有关。对于PSD的每个生长峰,我们确定了每个电子能量发生局部加速度的L*。同样,我们还通过径向扩散曲线确定哪些PSD曲线与加速度有关。将这两组谱图与Van Allen Probe-A观测到的多mev电子通量增强进行了比较。结果表明,两种机制(局部加速和径向扩散)都可以促进多mev电子的加速,但每种机制都有一个较好的L*区域,在该区域它是主要的加速过程。
The Role of Local Acceleration and Radial Diffusion in Multi-MeV Electron Flux Enhancements
During the Van Allen Probes era, several multi-MeV (>4 MeV) electron flux enhancements were observed. The cause of electron acceleration up to multi-MeV remains an ongoing science topic. In this study, we focus on examining the relationship between phase space density (PSD) radial profile shapes and the occurrence of multi-MeV electron flux enhancement events. This will determine which process (local acceleration or radial diffusion) is dominant in producing multi-MeV electron flux enhancements at a specific L*. Growing peaks in PSD radial profiles are associated with the local acceleration (i.e., a wave-particle interaction) of multi-MeV electrons. For each growing peak in PSD, we determined the L* where the local acceleration occurs for each respective electron energy. Similarly, we also identify which PSD profiles are related to acceleration via radial diffusion profiles. Both sets of profiles are compared with the Van Allen Probe-A observed multi-MeV electron flux enhancements. Results show that both mechanisms (local acceleration and radial diffusion) can facilitate multi-MeV electron acceleration, however each mechanism has a preferable L* region where it is the dominant acceleration process.