首页> 外文期刊>The Astrophysical journal >Impact of Shock Front Rippling and Self-reformation on the Electron Dynamics at Low-Mach-number Shocks
【24h】

Impact of Shock Front Rippling and Self-reformation on the Electron Dynamics at Low-Mach-number Shocks

机译:低马赫数激波时激波前波和自重对电子动力学的影响

获取原文
       

摘要

Electron dynamics at low-Mach-number collisionless shocks are investigated by using two-dimensional electromagnetic particle-in-cell simulations with various shock normal angles. We found: (1) The reflected ions and incident electrons at the shock front provide an effective mechanism for the quasi-electrostatic wave generation due to the charge-separation. A fraction of incident electrons can be effectively trapped and accelerated at the leading edge of the shock foot. (2) At quasi-perpendicular shocks, the electron trapping and reflection is nonuniform due to the shock rippling along the shock surface and is more likely to take place at some locations accompanied by intense reflected ion-beams. The electron trapping process has a periodical evolution over time due to the shock front self-reformation, which is controlled by ion dynamics. Thus, this is a cross-scale coupling phenomenon. (3) At quasi-parallel shocks, reflected ions can travel far back upstream. Consequently, quasi-electrostatic waves can be excited in the shock transition and the foreshock region. The electron trajectory analysis shows these waves can trap electrons at the foot region and reflect a fraction of them far back upstream. Simulation runs in this paper indicate that the micro-turbulence at the shock foot can provide a possible scenario for producing the reflected electron beam, which is a basic condition for the type II radio burst emission at low-Mach-number interplanetary shocks driven by Coronal Mass Ejections (CMEs).
机译:通过使用具有各种冲击法向角的二维电磁单元模拟,研究了低马赫数无碰撞冲击下的电子动力学。我们发现:(1)由于电荷分离,在冲击前沿的反射离子和入射电子为产生准静电波提供了一种有效的机制。一部分入射电子可以有效地捕获并在电击脚的前沿加速。 (2)在准垂直冲击下,由于沿冲击表面的冲击波引起的电子俘获和反射是不均匀的,并且更可能发生在某些位置,并伴有强烈的反射离子束。电子俘获过程由于冲击前的自重而随时间周期性地演化,该自重由离子动力学控制。因此,这是跨尺度耦合现象。 (3)在准平行冲击下,反射离子会向上游传播很远。因此,可以在冲击转变和前震区域中激发准静电波。电子轨迹分析表明,这些波可以将电子捕获在脚部区域,并将一部分电子反射回上游。本文进行的仿真表明,电击脚处的微湍流可以为产生反射电子束提供可能的情况,这是在日冕驱动的低马赫数行星际电击时II型无线电脉冲发射的基本条件大量喷射(CME)。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号