Microwave plasma interaction in a printed transmission line for a power limiting application : from surface-wave-sustained to leaky-wave-sustained discharge.

Lucas Fuster, R. Pascaud, J. Sokoloff, Gerjan J M Hagelaar, Patrick Hoffmann, Olivier Pascal, Thierry Callegari
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Abstract

The coupling between a microwave signal and a plasma discharge in a suspended microstrip transmission line is analytically studied. Maxwell's equations are solved in a 2D approximation to get the expressions of the electromagnetic field. The wave propagation in the guiding structure is first explored without plasma, and for several modes and frequencies. A unified characterization of the three different modes that can propagate at the interface between two dielectric media, namely the leaky waves, the pseudo-surface wave and the pure surface wave, is given in terms of of both wave vectors and electromagnetic field magnitude distribution. This analyze allow to conclude that the fundamental mode in this case is a pseudo-surface wave. Thereafter, we focus on the microwave propagation with a uniform plasma inside the guiding structure. In the non collisional limit, it appears that the plasma discharge is sustained by the so-called pure surface wave, whereas in the collisional limit, a leaky wave propagates along the plasma column. Finally, a non-uniform density profile is taken into account in the calculation. The numerical results obtained from the self-consistent simulation of the microwave-plasma coupling, in a previous work, are thus analyzed with the aid of the analytical formulas to identify the microwave coupling involved in our plasma-based microwave power limiter. The computed propagation constant from numerical data confirmed the type of coupling exhibited for a uniform electron density. Furthermore, we highlight the role of the dielectric slab, from which electromagnetic power transfer occurs into the plasma discharge.
用于功率限制应用的印刷传输线中的微波等离子体相互作用:从表面波持续放电到泄漏波持续放电。
对悬浮微带传输线中微波信号与等离子体放电之间的耦合进行了分析研究。通过二维近似求解麦克斯韦方程,得到了电磁场的表达式。首先在没有等离子体的情况下,针对几种模式和频率探讨了波在导向结构中的传播。根据波矢量和电磁场幅值分布,对两种介电介质界面上传播的三种不同模式,即泄漏波、伪表面波和纯表面波进行了统一描述。通过分析可以得出结论,这种情况下的基模是伪表面波。接下来,我们将重点研究导波结构内均匀等离子体的微波传播。在非碰撞极限下,等离子体放电似乎是由所谓的纯表面波维持的,而在碰撞极限下,泄漏波沿等离子体柱传播。最后,计算中还考虑了非均匀密度剖面。因此,在分析公式的帮助下,我们对之前工作中通过自洽模拟微波-等离子体耦合得到的数值结果进行了分析,以确定我们基于等离子体的微波功率限制器中涉及的微波耦合。根据数值数据计算出的传播常数证实了在电子密度均匀的情况下所表现出的耦合类型。此外,我们还强调了电介质板的作用,电磁功率就是从电介质板转移到等离子体放电中的。
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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