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Excitation mechanisms and spectral properties of the ion-cyclotron parallel-velocity shear driven instability

机译:激励机制和光谱特性的离子回旋parallel-velocity剪切驱动的不稳定

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摘要

The electrostatic ion cyclotron parallel-velocity shear driven instability, and its associated oscillatory mode, is investigated analytically. It is shown that three distinct mechanisms are responsible for this instability, specifically, the ion-kinetic, ion-hydrodynamic and electron-kinetic mechanisms. In separate magnitude ranges of the normalized parallel-wavelength component, a different mechanism dominates, with a transition in each overlapping region. The linearized dispersion equation is solved within these ranges where the effects of inverse ion cyclotron damping, ion hydrodynamic, and inverse electron Landau damping alternately dominate, respectively, in the development of ion cyclotron oscillations. A general criterion of instability is determined by expressing the destabilizing effect of the velocity shear in terms of the perpendicular (magnetic field-normal) component of the wave vector.
机译:静电离子回旋parallel-velocity剪切驱动不稳定,及其相关的振荡模式,研究分析。结果表明,三种不同的机制负责这种不稳定性,具体地说,ion-kinetic ion-hydrodynamic和electron-kinetic机制。大小归一化的范围parallel-wavelength组件,一个不同的在每个机制占主导地位,过渡重叠的区域。方程是解决这些范围内的反离子回旋阻尼的影响,离子水动力和反电子朗道阻尼分别交替主导离子回旋振荡的发展。是由不稳定的一般准则表达的不稳定影响剪切的垂直速度(磁field-normal)组件的波向量。

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