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Study of multipactor suppression of microwave components using perforated waveguide technology for space applications

机译:使用穿孔波导技术进行空间应用微波部件的多移液器抑制研究

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摘要

With the development of space technology, microwave components with increased power handling capability and reduced weight have been urgently required. In this work, the perforated waveguide technology is proposed to suppress the multipactor effect of high power microwave components. Meanwhile, this novel method has the advantage of reducing components' weight, which makes it to have great potential in space applications. The perforated part of the waveguide components can be seen as an electron absorber (namely, its total electron emission yield is zero) since most of the electrons impacting on this part will go out of the components. Based on thoroughly benchmarked numerical simulation procedures, we simulated an S band and an X band waveguide transformer to conceptually verify this idea. Both electron dynamic simulations and electrical loss simulations demonstrate that the perforation technology can improve the multipactor threshold at least ~8 dB while maintaining the acceptable insertion loss level compared with its un-perforated components. We also found that the component with larger minimum gap is easier to achieve multipactor suppression. This effect is interpreted by a parallel plate waveguide model. What's more, to improve the multipactor threshold of the X band waveguide transformer with a minimum gap of ~0.1 mm, we proposed a perforation structure with the slope edge and explained its mechanism. Future study will focus on further optimization of the perforation structure, size, and distribution to maximize the comprehensive performances of microwave components.
机译:随着空间技术的发展,迫切需要具有增加的功率处理能力和减轻重量的微波部件。在这项工作中,提出了穿孔的波导技术来抑制高功率微波部件的多移能势效应。同时,这种新方法具有减少组件重量的优点,这使得它在太空应用中具有很大的潜力。波导组分的穿孔部分可以看出,因为电子吸收器(即,其总电子发射产率为零),因为大多数对该部分的电磁都将走出部件。基于彻底的基准数值模拟程序,我们模拟了S频带和X频带波导变压器,以概念上验证这个想法。电子动态模拟和电损耗模拟都表明穿孔技术可以至少提高多移能器阈值,而与其未穿孔的部件相比,保持可接受的插入损耗水平。我们还发现,具有更大最小间隙的组件更容易实现多移能势抑制。该效果由平行板波导模型解释。更重要的是,为了提高具有〜0.1mm的最小间隙的X波段波导变压器的多移脉阈值,我们提出了具有斜坡边缘的穿孔结构并解释了其机制。未来的研究将专注于进一步优化穿孔结构,尺寸和分布,以最大限度地提高微波成分的综合性能。

著录项

  • 来源
    《Physics of plasmas 》 |2017年第1期| 共11页
  • 作者单位

    School of Microelectronics Xi'an Jiaotong University Xi'an 710049 China;

    School of Microelectronics Xi'an Jiaotong University Xi'an 710049 China;

    School of Microelectronics Xi'an Jiaotong University Xi'an 710049 China;

    Department of Electrical and Computer Engineering University of Alberta Edmonton Alberta T6G 1H9 Canada;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学 ;
  • 关键词

    multipactor; suppression; microwave;

    机译:多移能势;抑制;微波炉;

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