Nonlinear Envelope Equation and Nonlinear Landau Damping Rate for a Driven Electron Plasma Wave

D. B'enisti, O. Morice, L. Gremillet, D. Strozzi
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引用次数: 5

Abstract

In this article, we provide a theoretical description and calculate the nonlinear frequency shift, group velocity, and collionless damping rate, ν, of a driven electron plasma wave (EPW). All these quantities, whose physical content will be discussed, are identified as terms of an envelope equation allowing one to predict how efficiently an EPW may be externally driven. This envelope equation is derived directly from Gauss’ law and from the investigation of the nonlinear electron motion, provided that the time and space rates of variation of the EPW amplitude, , are small compared to the plasma frequency or the inverse of the Debye length. ν arises within the EPW envelope equation as a more complicated operator than a plain damping rate and may only be viewed as such because [] remains nearly constant before abruptly dropping to zero. We provide a practical analytic formula for ν and show, without resorting to complex contour deformation, that in the limit 0, ν is nothing but the Landau damping rate. We then term ν the “nonlinear Landau damping rate” of the driven plasma wave. As for the nonlinear frequency shift of the driven EPW, it is also derived theoretically and found to assume values significantly different from previously published ones, which were obtained by assuming that the wave was freely propagating. Moreover, we find no limitation in , being the plasma wavenumber and the Debye length, for a solution to the dispertion relation to exist, and want to stress here the importance of specifying how an EPW is generated to discuss its properties. Our theoretical predictions are in excellent agreement with results inferred from Vlasov simulations of stimulated Raman scattering (SRS), and an application of our theory to the study of SRS is presented.
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驱动电子等离子体波的非线性包络方程和非线性朗道阻尼率
本文给出了一个理论描述,并计算了驱动电子等离子体波(EPW)的非线性频移、群速度和无柱阻尼率ν。所有这些物理量,其物理内容将被讨论,被确定为包络方程的项,允许人们预测外部驱动EPW的效率。这个包络方程是直接从高斯定律和对非线性电子运动的研究中推导出来的,前提是EPW振幅的时间和空间变化率与等离子体频率或德拜长度的倒数相比都很小。ν出现在EPW包络方程中,是一个比普通阻尼率更复杂的算符,可能只是因为[]在突然降为零之前几乎保持不变。我们提供了一个实用的解析公式,并证明在极限0下,ν只是朗道阻尼率,而不需要复杂的轮廓变形。然后我们将ν命名为驱动等离子体波的“非线性朗道阻尼率”。对于驱动EPW的非线性频移,也进行了理论推导,发现其假设值与先前发表的假设值有很大不同,这些假设值是在波自由传播的情况下得到的。此外,我们发现,当等离子体波数和德拜长度存在时,色散关系的解没有限制,并且想在这里强调说明如何产生EPW以讨论其性质的重要性。我们的理论预测与受激拉曼散射(SRS)的Vlasov模拟结果非常一致,并提出了我们的理论在SRS研究中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Transport Theory and Statistical Physics
Transport Theory and Statistical Physics 物理-物理:数学物理
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