具有透明阴极和输出模式的相对论磁控管的建模与优化

IF 1.4 4区 计算机科学 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
David Sawert, Pablo Vallejos, Frans Nyberg, Tomas Hurtig
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引用次数: 0

摘要

本文概述了对具有六个空腔和透明阴极配置的相对论磁控管进行粒子入室模拟的结果。在相互作用区实现了 π 模式的激发,进而导致 $textrm{TE}_{11}$ 模式向波导发射微波。这种模式转换是通过非对称衍射输出实现的,它由四个大的和两个小的锥形腔组成。在电压为 261 kV、磁场强度为 0.30 T、峰值输出功率为 590 MW 的情况下,获得了 37% 的最高效率。此外,还证明了波导的频率为 2.57 GHz,微波上升时间为 15 ns。当采用更长的相互作用区域时,电子泄漏电流从 10 美元/%下降到 1 美元/%以下,同时仍然表现出良好的性能。此外,我们还证明,在给定磁场的情况下,有一个最佳的电压范围,可以实现高效率的 π 模式激发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling and optimization of a relativistic magnetron with transparent cathode and output mode

This paper outlines the results of particle-in-cell simulations of a relativistic magnetron with six cavities and a transparent cathode configuration. Excitation of the π mode in the interaction region was attained, which in turn led to $\textrm{TE}_{11}$ mode emission of microwaves to the waveguide. This mode transformation was achieved with a non-symmetric diffraction output, consisting of four large and two small tapered cavities. Simulations were performed with a voltage across the anode-cathode gap varying from 164 to 356 kV, and axial magnetic field strengths between 0.24 and 0.34 T. Maximum efficiency of 37% was obtained with a peak output power of 590 MW, having a voltage of 261 kV and a magnetic field of 0.30 T. Furthermore, a frequency of 2.57 GHz and a rise time of microwaves at the waveguide of 15 ns were demonstrated. The electron leakage current was shown to decrease from ∼10$\%$ to less than $1\%$ when employing a longer interaction region, while still exhibiting good performance. Additionally, we show that there is an optimal range of voltages given a magnetic field, for which π mode excitation with high efficiency is attained.

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来源期刊
International Journal of Microwave and Wireless Technologies
International Journal of Microwave and Wireless Technologies ENGINEERING, ELECTRICAL & ELECTRONIC-TELECOMMUNICATIONS
CiteScore
3.50
自引率
7.10%
发文量
130
审稿时长
6-12 weeks
期刊介绍: The prime objective of the International Journal of Microwave and Wireless Technologies is to enhance the communication between microwave engineers throughout the world. It is therefore interdisciplinary and application oriented, providing a platform for the microwave industry. Coverage includes: applied electromagnetic field theory (antennas, transmission lines and waveguides), components (passive structures and semiconductor device technologies), analogue and mixed-signal circuits, systems, optical-microwave interactions, electromagnetic compatibility, industrial applications, biological effects and medical applications.
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