Linear and nonlinear dispersive effects on magnetospheric field line resonances

R. Rankin , V.T. Tikhonchuk
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引用次数: 3

Abstract

Shear Alfvén wave dispersion produced by electron inertia, ion gyro-kinetic and electron thermal pressure is modeled using two-fluid MHD and kinetic theory. In a dipolar magnetosphere, dispersion and non-linearity determine the spatial structure, temporal evolution and amplitude of parallel electric fields and large amplitude density fluctuations near to the polar ionosphere. Deep auroral density cavities are found to have a strong influence on auroral electric field generation. Many features of satellite and ground based observations of discrete arcs are predicted using two-fluid MHD, but large parallel electric fields (mV/m) and keV electron precipitation cannot easily be explained. To explain the observed electric fields it is necessary to evaluate the non-local kinetic electron response to standing shear Alfvén waves on dipolar magnetic field lines. It is shown that electron trapping leads to a significant reduction of the collisionless electron conductivity and a large enhancement of parallel electric fields in the 1 – 4 mHz frequency range of observed field line resonances.

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磁层场线共振的线性和非线性色散效应
利用双流体MHD和动力学理论,对电子惯性、离子陀螺动力学和电子热压产生的剪切alfv波色散进行了建模。在偶极磁层中,色散和非线性决定了在极电离层附近平行电场的空间结构、时间演化和振幅以及大振幅密度波动。深极光密度空腔对极光电场的产生有很强的影响。利用双流体MHD预测了离散弧的卫星和地面观测的许多特征,但大的平行电场(mV/m)和keV电子沉淀不容易解释。为了解释观测到的电场,有必要评估偶极磁力线上的非局域动态电子对驻切alfvsamn波的响应。结果表明,在观测到的场线共振的1 ~ 4 mHz频率范围内,电子捕获导致了无碰撞电子电导率的显著降低和平行电场的大幅增强。
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