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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >The Effects of Thermal Electrons on Whistler Mode Waves Excited by Anisotropic Hot Electrons: Linear Theory and 2-D PIC Simulations
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The Effects of Thermal Electrons on Whistler Mode Waves Excited by Anisotropic Hot Electrons: Linear Theory and 2-D PIC Simulations

机译:热电子在各向异性热电子激发的吹口石模式波的影响:线性理论和二维照片模拟

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摘要

The wave normal angle of excited whistler waves was previously considered to be controlled by the parallel plasma beta (β_(∥h)) of anisotropic hot electrons, while the effects of thermal electrons were usually neglected. By combining both the linear theoretical and 2-D particle-in-cell (PIC) simulation models, we have investigated the effects of thermal electrons on the whistler anisotropy instability. In the high-beta (β_(∥h) ≥ 0.025) regime, the wave normal angle of the dominant whistler mode with the largest growth rate is always 0°, which is not affected by thermal electrons, while, its wave frequency and linear growth rate decrease with the density and temperature of thermal electrons. These results are also confirmed by PIC simulations. In the low-beta (β_(∥h) ≤ 0.025) regime, with the increase of the density and temperature of thermal electrons, the wave normal angle of the dominant whistler mode turns to zero from a large value. This change could be due to the stronger damping caused by thermal electrons for oblique whistler mode,since oblique wave usually has a smaller cyclotron resonant velocity than parallel wave. PIC simulations also show a consistent result, but reproduce a broad magnetic spectrum, even in the case including sufficient thermal electrons. Furthermore, thermal electrons with large parallel velocities are resonantly accelerated in the perpendicular direction, while parts of hot electrons are trapped and accelerated in the parallel direction. Our study suggests that the wave normal angle of whistler mode in the Earth's magnetosphere could be determined by both anisotropic and thermal electrons.
机译:激发吹伏波的波正常角预先被认为是由各向异性热电子的平行等离子体β(β_(∥H))控制,而热电子通常被忽略。通过组合线性理论和2-D粒子内(PIC)仿真模型,我们研究了热电子对吹口哨各向异性不稳定性的影响。在高β(β_(√H)≥0.025)方案中,主导吹口哨模式的波浪正常角度始终为0°,其不受热电子影响,而其波频和线性增长速率随着热电子的密度和温度而降低。这些结果也通过PIC模拟确认。在低β(β_(√H)≤0.025)的状态下,随着热电的密度和温度的增加,主导吹口机模式的波正常角度从大值转向零。这种变化可能是由于倾斜吹口哨模式引起的较强阻尼,因为倾斜波通常具有比平行波的较小的回旋谐振速度。 PIC模拟还显示了一致的结果,但是即使在包括足够的热电子的情况下,也可以再现宽磁光谱。此外,具有大的平行速度的热电子在垂直方向上谐振加速,而在平行方向上捕获并加速了热电子的部分。我们的研究表明,地球磁层中吹口石模式的波正常角可以通过各向异性和热电子确定。

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  • 作者单位

    CAS Key Laboratory of Geospace Environment Department of Geophysics and Planetary Science University of Science and Technology of China Hefei China;

    CAS Key Laboratory of Geospace Environment Department of Geophysics and Planetary Science University of Science and Technology of China Hefei China;

    CAS Key Laboratory of Geospace Environment Department of Geophysics and Planetary Science University of Science and Technology of China Hefei China;

    College of Mathematics and Physics Qingdao University of Science and Technology Qingdao China;

    CAS Key Laboratory of Geospace Environment Department of Geophysics and Planetary Science University of Science and Technology of China Hefei China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 空间物理;
  • 关键词

    whistler; parallel; thermal;

    机译:惠斯勒;平行;热;

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