论文标题

在近似太阳风垂直冲击下的微插入性和波浪的PIC模拟:Parker太阳能探针和太阳轨道的预测

PIC simulations of microinstabilities and waves at near-Sun solar wind perpendicular shocks: Predictions for Parker Solar Probe and Solar Orbiter

论文作者

Yang, Zhongwei, Liu, Ying D., Matsukiyo, Shuichi, Lu, Quanming, Guo, Fan, Liu, Mingzhe, Xie, Huasheng, Gao, Xinliang, Guo, Jun

论文摘要

通过完整的粒子中的模拟(PIC)模拟研究了在近似太阳风中对中等刺激的垂直冲击激发的微插入性和波浪。通过分析直接从冲击模拟发出的波动场成分的色散关系,我们获得了有关冲击阵线上波动激发的关键发现:(1)在脚的前缘,观察到两种类型的静电(ES)波。反射离子与电子的相对漂移触发了电子环状漂移不稳定性(ECDI),从而激发了第一个ES波。由于陀螺反射离子的大容量速度转移到了冲击锋的方向,因此所得的ES波将倾斜传播到冲击正常状态。立即,该ES波加速了入射电子的一部分,并产生了环状速度分布。他们可以将麦克斯韦芯与热的麦克斯韦核心息息相关,并激发第二个ES波浪围绕上部杂种频率。 (2)从脚的中间一直到坡道,电子可以与事件和反射离子搭配。 ES在不同方向上通过ECDI激发的波浪彼此传播。在两个区域都观察到了向上游发出的电磁(EM)波(X模式)。它们可能是由一小部分相对论电子引起的。结果提供了对发生ES波激发的机制的新见解,以及在近似太阳风中以Young CME驱动的冲击发生的EM波排放。

Microinstabilities and waves excited at moderate-Mach-number perpendicular shocks in the near-Sun solar wind are investigated by full particle-in-cell (PIC) simulations. By analyzing the dispersion relation of fluctuating field components directly issued from the shock simulation, we obtain key findings concerning wave excitations at the shock front: (1) at the leading edge of the foot, two types of electrostatic (ES) waves are observed. The relative drift of the reflected ions versus the electrons triggers an electron cyclotron drift instability (ECDI) which excites the first ES wave. Because the bulk velocity of gyro-reflected ions shifts to the direction of the shock front, the resulting ES wave propagates oblique to the shock normal. Immediately, a fraction of incident electrons are accelerated by this ES wave and a ring-like velocity distribution is generated. They can couple with the hot Maxwellian core and excite the second ES wave around the upper hybrid frequency. (2) from the middle of the foot all the way to the ramp, electrons can couple with both incident and reflected ions. ES waves excited by ECDI in different directions propagate across each other. Electromagnetic (EM) waves (X mode) emitted toward upstream are observed in both regions. They are probably induced by a small fraction of relativistic electrons. Results shed new insight on the mechanism for the occurrence of ES wave excitations and possible EM wave emissions at young CME-driven shocks in the near-Sun solar wind.

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