Design of G-band 500 W sheet beam extended-interaction klystron

Q4 Engineering 强激光与粒子束 Pub Date : 2020-09-29 DOI:10.11884/HPLPB202032.200195
Z. Changqing, Feng Jinjun, Cai Jun, Pan Pan
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引用次数: 2

Abstract

High power generation in terahertz frequency band is limited by physical mechanism. A G-band sheet beam extended-interaction klystron was designed to demonstrate the power level and the physical factors that affect the performance of the klystron. An elliptical electron beam with a voltage of 24.5 kV, a current of 0.6 A and the dimension of 1 mm×0.15 mm was used. To match the size of the sheet beam and obtain high efficiency and high gain, the transverse-oversized barbell type multi-gap resonant cavity was used as the interaction circuit. The 3D PIC simulation results show that more than 500 W of power output can be obtained with the actual cavity loss considered, and the electron efficiency and gain are 3.65% and 38.2 dB respectively. It is found that the power and efficiency are largely restricted by the mode stability of the multi-gap cavity as well as the ohmic loss. The ohmic loss of the output cavity has a significant effect on the final output power which should be given special consideration in engineering design. The research in this paper has laid a good foundation for the development of high frequency sheet beam extended-interaction devices.
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G波段500W片束扩展相互作用速调管的设计
太赫兹频段的高功率产生受到物理机制的限制。设计了一个G波段片束扩展相互作用速调管,以演示功率水平和影响速调管性能的物理因素。使用电压为24.5kV、电流为0.6A、尺寸为1mm×0.15mm的椭圆电子束。为了匹配片梁的尺寸并获得高效率和高增益,采用横向超大杠铃型多间隙谐振腔作为相互作用电路。三维PIC仿真结果表明,在考虑实际腔损耗的情况下,可以获得超过500W的功率输出,电子效率和增益分别为3.65%和38.2dB。研究发现,多间隙腔的模式稳定性以及欧姆损耗在很大程度上限制了功率和效率。输出腔的欧姆损耗对最终输出功率有很大影响,在工程设计中应予以特别考虑。本文的研究为开发高频片梁扩展相互作用器件奠定了良好的基础。
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来源期刊
强激光与粒子束
强激光与粒子束 Engineering-Electrical and Electronic Engineering
CiteScore
0.90
自引率
0.00%
发文量
11289
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