论文标题
太阳风中惠斯勒热通量不稳定性的粒子中的粒子模拟:热通量调节和电子晕圈形成
Particle-In-Cell simulation of whistler heat flux instabilities in the solar wind: heat flux regulation and electron halo formation
论文作者
论文摘要
我们提出了二维全动粒子中模拟的结果,以阐明惠斯勒波在strahl电子的散射以及太阳风中的热通量调节中的作用。我们将电子速度分布函数建模为最初由核心和Strahl种群组成的,如Parker太阳能探针所观察到的近似太阳风中通常遇到的。我们证明,由于电子速度分布函数的演变,可以激发惠斯勒热通量不稳定性的两个分支,这可能会驱动惠斯勒波在倾斜方向或与背景磁场平行的方向传播的惠斯勒波。首先,倾斜的惠斯勒波会诱导strahl电子的俯仰角散射,朝着较高的垂直速度降低。这导致了strahl俯仰角分布的扩大,因此以牺牲Strahl为代价的光环样群体形成。后来,电子速度分布函数经历了平行惠斯勒波的效果,这有助于将垂直方向散布到更对称的光环中的颗粒的重新分布,这与观察结果一致。仿真结果表明,与倾斜的惠斯勒热通量不稳定性的线性理论达成了显着的一致性。该过程伴随着Strahl种群携带的热通量的显着降低。
We present results of two-dimensional fully kinetic Particle-In-Cell simulation in order to shed light on the role of whistler waves in the scattering of strahl electrons and in the heat flux regulation in the solar wind. We model the electron velocity distribution function as initially composed of core and strahl populations as typically encountered in the near-Sun solar wind as observed by Parker Solar Probe. We demonstrate that, as a consequence of the evolution of the electron velocity distribution function, two branches of the whistler heat flux instability can be excited, which can drive whistler waves propagating in the direction oblique or parallel to the background magnetic field. First, oblique whistler waves induce pitch-angle scattering of strahl electrons, towards higher perpendicular velocities. This leads to the broadening of the strahl pitch angle distribution and hence to the formation of a halo-like population at the expense of the strahl. Later on, the electron velocity distribution function experiences the effect of parallel whistler waves, which contributes to the redistribution of the particles scattered in the perpendicular direction into a more symmetric halo, in agreement with observations. Simulation results show a remarkable agreement with the linear theory of the oblique whistler heat flux instability. The process is accompanied by a significant decrease of the heat flux carried by the strahl population.