The Development of Capacitive Nonlinear Transmission Lines and Its Performance Limits

E. Rangel, J. O. Rossi, J. Barroso, Leandro C. Silva, L. R. Raimundi, F. S. Yamasaki, L. Neto, E. Schamiloglu
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Abstract

The generation of radiofrequency through Nonlinear Transmission Lines (NLTLs) have been investigated as an alternative way to build RF generators for application in a variety of areas such as telecommunication, medical and defensive electronic countermeasures systems. Two main configurations of NLTLs have been reported in the literature: the discrete lines that comprise a network of LC sections built with nonlinear components and a gyromagnetic line that consists of a coaxial transmission line loaded with ferrite-based magnetic cores. Gyromagnetic lines produce high voltage microwave oscillations with frequency ranging from few hundred of MHz up to less than 10 GHz, however, an external magnetic polarization is required. On the other hand, discrete lines are suitable for RF generation in a lower frequency range from a few MHz to hundreds of MHz, having a better prospect for the use in compact systems. Capacitive NLTLs require the use of voltage-dependent components such as a ceramic capacitor or varactor diodes. While lines built with ceramic capacitors show a maximum operating frequency around tens of MHz requiring high input voltage, the use of silicon varactors diodes allows the construction of low voltage lines. On the other hand, by using carbide silicon Schottky diodes, the output of capacitive NLTLs can reach a few kV. This paper presents some experimental results on the development of the capacitive NLTLs at the Plasma Laboratory (LABAP) of the National Institute for Space Research (INPE) in Brazil. The analysis of the experimental results points out that performance limits of capacitive NLTLs are closely related to the characteristics of the nonlinear component used in their construction, leading to the conclusion that an improvement of their performance requires the development of new nonlinear components that present simultaneously voltage-dependent nonlinear capacitance, low losses, and thermal stability.
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电容式非线性传输线的发展及其性能极限
通过非线性传输线(NLTLs)产生射频已被研究作为一种替代方法来构建射频发生器应用于各种领域,如电信,医疗和防御电子对抗系统。文献中报道了nltl的两种主要结构:由非线性元件组成的LC部分网络组成的离散线和由载有铁氧体基磁芯的同轴传输线组成的回旋磁力线。回旋磁力线产生频率从几百兆赫到不到10千兆赫的高压微波振荡,然而,需要外部磁极化。另一方面,离散线适合在几MHz到数百MHz的较低频率范围内产生射频,在紧凑型系统中具有更好的应用前景。电容式nltl需要使用电压相关元件,如陶瓷电容器或变容二极管。虽然用陶瓷电容器构建的线路显示出大约几十兆赫兹的最大工作频率,需要高输入电压,但使用硅变容二极管可以构建低压线路。另一方面,通过使用碳化硅肖特基二极管,电容性nltl的输出可以达到几kV。本文介绍了在巴西国家空间研究所(INPE)等离子体实验室(LABAP)研制电容性nltl的一些实验结果。通过对实验结果的分析,指出电容式nltl的性能极限与其结构中使用的非线性元件的特性密切相关,从而得出结论:要提高其性能,需要开发同时具有电压相关非线性电容、低损耗和热稳定性的新型非线性元件。
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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