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Kinetic Equilibrium and Stability Analysis of Dipolarization Fronts

机译:动态平衡和稳定分析Dipolarization方面

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Dipolarization fronts are typically observed with a density gradient of scale size comparable to an ion gyroradius, which naturally results in an ambipolar electric field in the direction of the gradient. Prevailing models ignore this ambipolar electric field, the separation of ion and electron scale physics, and consequent non-Maxwellian plasma distributions with strong spatial gradients in velocity, all of which we investigate in this paper. We examine two dipolarization front events observed by the Magnetospheric Multiscale mission (one with low plasma beta, one with high plasma beta), develop a rigorous kinetic equilibrium for dipolarization fronts, analyze the linear stability, and explore the nonlinear evolution and observable signatures with kinetic simulations. There are two major drivers of instability in the lower-hybrid frequency range: the density gradient (lower-hybrid drift instability) and the velocity shear (electron-ion hybrid instability). We argue the electron-ion hybrid mode is dominant, and consequently a dipolarization front approaches a steady or saturated state through the emission of waves that relax the velocity shear. A key aspect of these shear-driven waves is a broadband frequency spectrum that is consistent with satellite observation.
机译:Dipolarization方面通常观察到密度梯度的规模大小与一个离子回转半径,在一个自然的结果双极性电场的方向梯度。电场,离子的分离电子物理、规模和结果non-Maxwellian等离子体分布与强大在速度空间梯度,我们所有的本文进行调查。dipolarization前观察到的事件磁性层的多尺度(一个较低的任务血浆β1高血浆β),发展dipolarization严格的动态平衡方面,分析了线性稳定性和探索非线性演化和可观察到的签名与动力学模拟。司机的不稳定在低混杂频率范围:密度梯度(低混杂漂移不稳定性)和速度剪切(电子离子混合动力不稳定)。电子离子混合模式为主导因此dipolarization战线的方法通过排放稳定或饱和状态速度剪切波,放松一下。这些shear-driven电波的宽带频谱是一致的卫星观测。

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