论文标题

准平行冲击中的电子能量:质子驱动的湍流中的测试粒子电源

Electron Energization in Quasi-Parallel Shocks: Test-Particle-Electrons in a Proton Driven Turbulence

论文作者

Hanusch, Adrian, Liseykina, Tatyana, Malkov, Mikhail

论文摘要

卫星任务可实现的现场观察到地球弓上的能量颗粒长期以来一直在观点,即电子在准垂直的电击几何形状中最有效地加速了电子。但是,被认为是负责宇宙射线电子的产生的冲击及其从诸如超新星残留物等来源的辐射比地球的弓箭更强大,更大。它们的远程观察结果以及土星弓冲击的原位测量值,表明电子在准平行冲击中也非常有效地加速了电子。在本文中,我们研究了加速高能的质子会产生足够的波湍流,这对于电子预热并随后注入到准平行的冲击几何形状中是必要的。引入了一个额外的测试粒子电子种群,这是引入混合模拟的电子核心分布的低密度添加。我们研究了这些电子是如何通过杂化电磁场通电的。降低的空间维度使我们能够大大增加每个数值电池的宏观数量,并获得测试电子速度分布的融合结果。我们讨论了电子预热机制,这可以使在混合模拟中观察到的离子驱动波访问的热电子中很大一部分。我们发现,由离子提供的前体波场具有很大的潜力,可以在电子震惊之前将其预热。

In situ observations of energetic particles at the Earth's bow-shock that are attainable by the satellite missions have long created the opinion that electrons are most efficiently accelerated in a quasi-perpendicular shock geometry. However, shocks that are deemed to be responsible for the production of cosmic ray electrons and their radiation from sources such as supernova remnants are much more powerful and larger than the Earth's bow-shock. Their remote observations and in situ measurements at Saturn's bow shock, suggest that electrons are accelerated very efficiently in the quasi-parallel shocks as well. In this paper we investigate the possibility that protons that are accelerated to high energies create sufficient wave turbulence, which is necessary for the electron preheating and subsequent injection into the diffusive shock acceleration in a quasi-parallel shock geometry. An additional test-particle-electron population, which is meant to be a low-density addition to the electron core-distribution on which the hybrid simulation operates, is introduced. We investigate how these electrons are energized by the hybrid electromagnetic field. The reduced spatial dimensionality allowed us to dramatically increase the number of macro-ions per numerical cell and achieve the converged results for the velocity distributions of test electrons. We discuss the electron preheating mechanisms, which can make a significant part of thermal electrons accessible to the ion-driven waves observed in hybrid simulations. We find that the precursor wave field supplied by ions has a considerable potential to preheat the electrons before they are shocked at the subshock.

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