Effect of desorbed gas on microwave breakdown on vacuum side of dielectric window

IF 1.6 3区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS Plasma Science & Technology Pub Date : 2023-11-16 DOI:10.1088/2058-6272/ad0d58
Pengcheng Zhao, Zhongyu Liu, Rui Wang, Panpan Shu, Lixing Guo, Xiangxin Cao
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Abstract

The gas desorbed from the dielectric surface has a great influence on the characteristics of microwave breakdown on the vacuum side of the dielectric window. In this paper, the dielectric surface breakdown is described by using the electromagnetic particle-in-cell-Monte Carlo collision (PIC-MCC) model. The process of desorption of gas and its influence on the breakdown characteristics are studied. The simulation results show that, due to the accumulation of desorbed gas, the pressure near the dielectric surface increases in time, and the breakdown mechanism transitions from secondary electron multipactor to collision ionization. More and more electrons generated by collision ionization drift to the dielectric surface, so that the amplitude of self-organized normal electric field increases in time and sometimes points to the dielectric surface. Nevertheless, the number of secondary electrons emitted in each microwave cycle is approximately equal to the number of primary electrons. In the early and middle stages of breakdown, the attenuation of the microwave electric field near the dielectric surface is very small. However, the collision ionization causes a sharp increase in the number density of electrons, and the microwave electric field decays rapidly in the later stage of breakdown. Compared with the electromagnetic PIC-MCC simulation results, the mean energy and number of electrons obtained by the electrostatic PIC-MCC model are overestimated in the later stage of breakdown because it does not take into account the attenuation of microwave electric field. The pressure of the desorbed gas predicted by the electromagnetic PIC-MCC model is close to the measured value, when the number of gas atoms desorbed by an incident electron is taken as 0.4.
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解吸气体对介质窗口真空侧微波击穿的影响
介质表面解吸的气体对介质窗口真空侧的微波击穿特性有很大影响。本文采用电磁粒子-细胞-蒙特卡洛碰撞(PIC-MCC)模型来描述介质表面击穿。研究了气体的解吸过程及其对击穿特性的影响。模拟结果表明,由于解吸气体的积累,电介质表面附近的压力随时间而增加,击穿机制从二次电子多反应器过渡到碰撞电离。碰撞电离产生的电子越来越多地漂移到电介质表面,因此自组织法向电场的振幅随时间增加,有时会指向电介质表面。尽管如此,在每个微波周期中发射的次级电子数大致等于初级电子数。在击穿的早期和中期,介质表面附近的微波电场衰减非常小。然而,碰撞电离导致电子数密度急剧增加,微波电场在击穿后期迅速衰减。与电磁 PIC-MCC 模拟结果相比,静电 PIC-MCC 模型得到的平均能量和电子数在击穿后期被高估,因为它没有考虑微波电场的衰减。当入射电子解吸的气体原子数为 0.4 时,电磁 PIC-MCC 模型预测的解吸气体压力与测量值接近。
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来源期刊
Plasma Science & Technology
Plasma Science & Technology 物理-物理:流体与等离子体
CiteScore
3.10
自引率
11.80%
发文量
3773
审稿时长
3.8 months
期刊介绍: PST assists in advancing plasma science and technology by reporting important, novel, helpful and thought-provoking progress in this strongly multidisciplinary and interdisciplinary field, in a timely manner. A Publication of the Institute of Plasma Physics, Chinese Academy of Sciences and the Chinese Society of Theoretical and Applied Mechanics.
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