Microwave Heating of Low-Temperature Plasma and Its Application

T. Frolova, V. Buts, G. Churyumov, E. Odarenko, V. Gerasimov
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Abstract

In this chapter, the results of theoretical and experimental studies of the interaction of an electromagnetic field with a plasma (fundamental interaction of the wave-particle type) both in the regime of standing waves (in the case of a resonator) and in the case of traveling waves in a waveguide are presented. The results of computer modeling the distribution of a regular electromagnetic field for various designs of electrodynamic structures are considered. The most attractive designs of electrodynamic structures for practical application are determined. A brief review and analysis of some mechanisms of stochastic plasma heating are given as well as the conditions for the formation of dynamic chaos in such structures are determined. Comparison analysis of microwave plasma heating in a regular electromagnetic field (in a regime with dynamical chaos) with plasma heating by random fields is considered. It is shown, that stochastic heating of plasma is much more efficient in comparison with other mechanisms of plasma heating (including fundamental interaction of the wave-wave type). The results obtained in this work can be used to increase the efficiency of plasma heating as well as to develop promising new sources of electromagnetic radiation in the microwave and optical ranges.
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低温等离子体微波加热及其应用
在本章中,介绍了电磁场与等离子体相互作用(波粒型基本相互作用)在驻波(谐振器的情况)和波导中行波的情况下的理论和实验研究结果。考虑了各种电动力结构设计中规则电磁场分布的计算机模拟结果。确定了实际应用中最具吸引力的电动结构设计。简要回顾和分析了随机等离子体加热的一些机理,并确定了这种结构中动态混沌形成的条件。考虑了在规则电磁场(动态混沌状态)下微波等离子体加热与随机场加热等离子体的比较分析。结果表明,等离子体的随机加热比其他等离子体加热机制(包括波-波型的基本相互作用)更有效。这项工作的结果可以用来提高等离子体加热的效率,并在微波和光学范围内开发有前途的新电磁辐射源。
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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