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Transverse instability of electron phase-space holes in multi-dimensional Maxwellian plasmas

机译:多维最大位居等离子体中电子相空穴孔的横向不稳定性

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摘要

The stability of an initially one-dimensional electron hole to perturbations varying sinusoidally transverse to its trapping direction is analysed in detail. It is shown that the expected low-frequency eigenmode of the linearized Vlasov-Poisson system consists of a shift mode, proportional to the gradient of the equilibrium potential. The resulting dispersion relation is that the total jetting force exerted by a perturbed hole on the particles balances the electric restoring tension of the hole. The tension is quantitatively small and can often be ignored. The particle force is expressed as integrals of equilibrium parameters over the hole and is shown at low frequency to be exactly equal to what has recently been found (by different analysis) to express `kinematic' hole momentum conservation. The mechanism of instability has nothing to do with the previously hypothesized transverse electron focusing. The unmagnetized growth rate gamma (k) is found numerically and is in excellent agreement with recent kinematic estimates. Magnetic field stabilization of the transverse mode is also evaluated. The resulting stability boundary for Maxwellian holes is in reasonable agreement with previously published criteria based on particle simulation. It arises from a change of trapped force sign across the resonance between bounce and cyclotron frequencies.
机译:详细地分析了初始一维电子空穴对扰动变化的扰动的稳定性。结果表明,线性化Vlasov-Poisson系统的预期低频特征模型由换档模式组成,与平衡势的梯度成比例。所得到的分散关系是通过颗粒上的扰动孔施加的总喷射力平衡孔的耐力静力。张力是定量小的,并且通常可以忽略。颗粒力表示为孔上的平衡参数的积分,并且以低频示出,正如最近发现的(通过不同的分析)以表达出现“运动”孔动量保护。不稳定机制与先前假设的横向电子聚焦无关。数值上发现未达到的生长速率γ(k)并与最近的运动估计值非常一致。还评估横向模式的磁场稳定。 MaxWellian孔的所得到的稳定性边界与基于粒子仿真的先前公布的标准合理。它源于反弹和回旋频率之间的共振的陷阱力标志的变化。

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