Microwave breakdown in an overmoded relativistic backward wave oscillator operating at low magnetic field

IF 1.3 Q3 ORTHOPEDICS Plasma Research Express Pub Date : 2021-04-20 DOI:10.1088/2516-1067/abf6b0
R. Xiao, Youyou Gui, Guangshuai Zhang, Yanchao Shi, Huida Wang, Kun Chen
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引用次数: 3

Abstract

Microwave breakdown has always been a huge challenge to the development of high-power microwave (HPM) sources. Some unique breakdown phenomena in a novel and powerful overmoded relativistic backward wave oscillator (RBWO) operating at low magnetic field are demonstrated. Three different breakdown mechanisms are utilized to explain these phenomena through detailed electromagnetic field calculation and particle-in-cell demonstration and effective methods are applied or suggested to mitigate the breakdown. The breakdown in the slow wave structure (SWS) mainly results from bombardment by the main electron beam under the intense radial electric field. Increasing the span between the main electron beam and the SWS or applying a coaxial extraction structure operating at coaxial TM01 mode might decrease the radial electric field and lessen the bombardment. The breakdown in the internal reflector originates with the field-induced emission in the inner ring under the intense axial electric field of the TM01 and TM02 mode and the subsequent electron-triggered emission in the outer ring. Removing the central part or constructing a complex reflector surface can suppress the emission. The breakdown in the slot retained for the Rogowski coil results from low pressure gas discharge initiated by microwave leakage from the RBWO into the diode region. Pasting microwave absorbing material into the coaxial diode region helps to obtain normal beam current waveforms measured by the Rogowski coil.
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在低磁场下工作的超模相对论反向波振荡器中的微波击穿
微波击穿一直是高功率微波源发展面临的巨大挑战。介绍了一种新型强过模相对论后向波振荡器(RBWO)在低磁场下工作时的一些独特击穿现象。通过详细的电磁场计算和细胞内粒子演示,利用三种不同的击穿机制来解释这些现象,并应用或建议了有效的方法来减轻击穿。慢波结构的击穿主要是由主电子束在强径向电场作用下的轰击引起的。增加主电子束和SWS之间的跨度或应用在同轴TM01模式下操作的同轴提取结构可以减小径向电场并减少轰击。内部反射器中的击穿源于TM01和TM02模式的强轴向电场下内环中的场致发射以及随后的外环中的电子触发发射。去除中心部分或构造复杂的反射器表面可以抑制发射。为Rogowski线圈保留的槽中的击穿是由从RBWO到二极管区域的微波泄漏引发的低压气体放电引起的。将微波吸收材料粘贴到同轴二极管区域有助于获得Rogowski线圈测量的正常波束电流波形。
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来源期刊
Plasma Research Express
Plasma Research Express Energy-Nuclear Energy and Engineering
CiteScore
2.60
自引率
0.00%
发文量
15
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