考虑到有限壁传导性的不规则波导激励方程及其在超高功率微波问题中的应用。第 2 部分。相对论克利诺隆

IF 0.4 4区 计算机科学 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Communications Technology and Electronics Pub Date : 2024-03-20 DOI:10.1134/s1064226923150093
V. F. Kravchenko, A. A. Kurayev, V. V. Matveyenko, A. O. Rak
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引用次数: 0

摘要

摘要基于带有阴极滤波调制器的不规则空心波导上的相对论性行波管(TWTs)和后向波振荡器(BWOs)的严格非线性理论,考虑到传播波和超临界波,考虑到波导壁的损耗和引导电子流的磁静电场的不均匀性,确定了电子流的动态分层对发生器效率的影响。文章通过优化不均匀高频场和磁场中的电子束以及电子束层沉积在波纹状不规则波导上时的波纹状不规则波导特性,展示了动态分层对效率影响的全面补偿可能性。
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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Excitation Equations for Irregular Waveguides Taking into Account the Finite Wall Conductivity and Their Application for Ultrahigh-Power Microwave Problems. Part 2. Relativistic Klynotron

Abstract

Based on the rigorous nonlinear theory of relativistic traveling wave tubes (TWTs) and backward wave oscillators BWOs on irregular hollow waveguides with cathode filter-modulators, taking into account both propagating and supercritical waves, taking into account losses in the walls of the waveguide and the inhomogeneity of the magnetostatic field guiding the electron flow, the influence of dynamic stratification of the electron flow on the efficiency of the generator is determined. The article shows a full compensation possibility on the influence of dynamic layering on efficiency by optimizing an electronic beam in inhomogeneous high frequency and magnetic fields and the corrugated irregular waveguide characteristics when electron beam layers depositing on it.

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来源期刊
CiteScore
1.00
自引率
20.00%
发文量
170
审稿时长
10.5 months
期刊介绍: Journal of Communications Technology and Electronics is a journal that publishes articles on a broad spectrum of theoretical, fundamental, and applied issues of radio engineering, communication, and electron physics. It publishes original articles from the leading scientific and research centers. The journal covers all essential branches of electromagnetics, wave propagation theory, signal processing, transmission lines, telecommunications, physics of semiconductors, and physical processes in electron devices, as well as applications in biology, medicine, microelectronics, nanoelectronics, electron and ion emission, etc.
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