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Electron Acceleration By Magnetic Islands In A Dynamically Evolved Coronal Current Sheet

机译:磁岛的电子加速在动态演进的冠状电流板中

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This work simulated the electron acceleration by magnetic islands in a drastically evolved solar coronal current sheet via the combined 2.5-dimensional (2.5D) resistive Magnetohydrodynamics (MHD) and guiding-center approximation test-particle methods. With high magnetic Reynolds number of 10~5, the long-thin current sheet is evolved into a chain of magnetic islands, growing in size and coalescing with each other, due to tearing instability. The acceleration of electrons is studied in one typical phase when several large magnetic islands are formed. The results show that the electrons with an initial Maxwell distribution evolve into a heavy-tailed distribution and more than 20 % of the electrons can be accelerated higher than 200 keV within 0.1 second and some of them can even be energized up to MeV ranges. The most energetic electrons have a tendency to be around the outer regions of the magnetic islands or to be located in the small secondary magnetic islands. We find that the acceleration and spatial distributions of the energetic electrons is caused by the trapping effect of the magnetic islands and the distributions of the parallel electric field E_p.
机译:这项工作通过组合的2.5维(2.5D)电阻磁力学(MHD)和引导中心近似试验颗粒方法模拟了磁岛的磁岛中的电子加速。对于高磁性雷诺数10〜5,由于撕裂不稳定,长薄的电流片被演化到磁岛链中,并彼此合并,彼此聚合。当形成几个大磁岛时,在一个典型的相位中研究了电子的加速度。结果表明,具有初始麦克斯韦分布的电子进化成重型分布,20%的电子可以在0.1秒内加速高于200keV,并且其中一些甚至可以通过通电到MEV范围。最精力充沛的电子具有围绕磁岛的外部区域或位于小型次级磁岛的倾向。我们发现,活性电子的加速度和空间分布是由磁岛的捕获效果和并联电场E_P的分布引起的。

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