Effect of a planar metamaterial on the efficiency improvement and parasitic oscillations suppression of a meander-line slow wave traveling wave tube
CSTR:
Author:
Affiliation:

1.Key Laboratory of High power Microwave Sources and Technologies, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing 101407, China;2.University of Chinese Academy of Sciences, Beijing 100049, China

Clc Number:

O46

Fund Project:

Support Key Laboratory of Chinese Academy of Sciences Funding(E23D13010D)

  • Article
  • |
  • Figures
  • |
  • Metrics
  • |
  • Reference
  • |
  • Related
  • |
  • Cited by
  • |
  • Materials
  • |
  • Comments
    Abstract:

    An open rhombus metamaterial structure is proposed to suppress the parasitic mode oscillations and improve the beam-wave interaction efficiency of a U-shaped meander-line slow wave traveling wave tube. The effect of the metamaterial on the surface E-field enhancement of the beam-wave interaction and the suppression of the parasitic oscillations were discussed through the combination of the circuit design with the numerical simulation optimization by considering the resonant performance of the metamaterial unit, the coordination of the matamaterial with the slow wave structure, the realizability and simplicity of the circuit structure. The simulated results of a Ka-band U-shaped meander-line slow wave traveling wave tube show that this metamaterial is effective in suppressing the parasitic oscillations and improving beam-wave interaction efficiency, which is of great significance of improving the stability of this kind of traveling wave tube.

    Reference
    Related
    Cited by
Get Citation

LI Zhou-Qi-Jun, WEN Zheng, ZHANG Zhi-Qiang, LUO Ji-Run. Effect of a planar metamaterial on the efficiency improvement and parasitic oscillations suppression of a meander-line slow wave traveling wave tube[J]. Journal of Infrared and Millimeter Waves,2023,42(1):43~49

Copy
Share
Article Metrics
  • Abstract:
  • PDF:
  • HTML:
  • Cited by:
History
  • Received:June 06,2022
  • Revised:January 04,2023
  • Adopted:July 19,2022
  • Online: January 03,2023
  • Published: February 25,2023
Article QR Code