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Coupling of electrons and inertial Alfven waves in the topside ionosphere

机译:电子耦合和惯性阿尔芬波顶部电离层

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A one-dimensional kinetic model is constructed to simulate the electron acceleration by inertial Alfven waves. The electrons are divided into cold and hot electrons and treated separately. Cold components are described by the fluid equation and hot ones by the Vlasov equation, both carrying field-aligned currents. Intense variation of Alfven speed has been introduced by inclusion of cold electrons. The model results show that the exponential decrease of the plasma density plays a key role, which leads to the sharp gradient of both Alfven velocity and electron inertial length. When Alfven waves encounter this sharp gradient at lower altitudes, the electrons accelerated by the waves become super-Alfvenic, and the width of burst structures becomes much wider than the electron inertial length. Consequently, the background electrons carry the oppositely field-aligned current due to plasma oscillation. It is demonstrated that the current carried by the electrons exceeding the wavefront is balanced by the reverse current carried by background electrons. This mechanism can be used to reasonably explain observations of the electron bursts accompanied by little net field-aligned current. Furthermore, our simulation indicates another type of Alfven wave reflection due to mirror force and wave-particle interaction. Key Points Kinetic model which separates the electrons into cold and hot parts Explain the electron bursts accompanied by little net field-aligned current Another type of Alfven wave reflection due to wave-particle interaction
机译:一维动力学模型模拟电子通过惯性加速度阿尔芬波。和热电子和单独处理。组件是由流体方程描述由弗拉索夫方程和热的携带field-aligned电流。引入了阿尔芬的变化速度包含冷电子。表明等离子体的指数降低密度中发挥着关键作用,这导致了锋利的阿尔芬速度和梯度电子惯性长度。遇到这种大幅低海拔、坡度电子加速了海浪super-Alfvenic,破裂的宽度结构成为更广泛的比电子惯性长度。当前由于携带相对field-aligned等离子体振荡。目前由电子超过了波阵面由反向电流平衡由背景电子。可以合理解释的观察吗电子脉冲伴随着小净field-aligned电流。仿真表明另一种类型的阿尔芬波由于镜子反射力和波粒交互。电子分为冷热部分解释电子脉冲伴随着小净field-aligned目前阿尔芬的另一种类型波反射波粒相互作用造成的

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