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Basic theoretical formulation of plasma microwave electronics. II. Kinetic theory of electron beam-wave interactions

机译:等离子微波电子学的基本理论公式。二。电子束-波相互作用的动力学理论

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For pt.I see ibid., vol.28, no.6, p.2135-51 (2000) Building upon the theoretical foundations presented in Part I of this paper, the kinetic theory of electron-beam-wave interactions in a magnetized plasma-filled waveguide (MPW) is presented in this second part. This kinetic theory treatment is more generally applicable to cases of less-intense electron-beams (Montgomery and Tidman, 1964). The dispersion relations for longitudinal and transverse interactions, in both smooth and corrugated waveguides, are all derived by using kinetic theory to model the e-beam dynamics. This includes kinetic theory treatments of the plasma filled electron cyclotron resonance maser (ECRM) and a combination of Cherenkov-cyclotron resonance phenomena. It is important to note that in an MPW, transverse interactions (e.g., ECRM interactions) are always coupled with longitudinal interactions. Using the kinetic treatment is essential for studying the ECRM because its energy conversion mechanism is based on azimuthal phase bunching and finite Larmor radius effects. The dispersion relation that we derive shows that the presence of a plasma-fill tends to increase the growth rate of the waveguide mode ECRM instability.
机译:pt.I同上,第28卷,第6期,p.2135-51(2000)在本文第一部分提出的理论基础上,建立了磁化电子束-电子波相互作用的动力学理论第二部分介绍了等离子填充波导(MPW)。这种动力学理论的方法更普遍地适用于弱电子束的情况(Montgomery and Tidman,1964)。光滑和波纹波导中纵向和横向相互作用的色散关系都是通过使用动力学理论对电子束动力学建模来得出的。这包括对等离子体填充电子回旋共振主(ECRM)的动力学理论处理以及Cherenkov-回旋共振现象的组合。重要的是要注意,在MPW中,横向交互作用(例如ECRM交互作用)总是与纵向交互作用结合在一起。使用动力学处理对于研究ECRM至关重要,因为其能量转换机制基于方位角相位聚集和有限的拉莫尔半径效应。我们得出的色散关系表明,等离子体填充物的存在会增加波导模式ECRM不稳定性的增长率。

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