A Forward-Wave Oscillator Based on Folded-Waveguide Slow-Wave Structure

被引:1
作者
Yin, Hairong [1 ]
Xu, Jin [1 ]
Yue, Lingna [2 ]
Gong, Yubin [1 ]
Wei, Yanyu [2 ,3 ]
机构
[1] Univ Elect Sci & Technol China, Chengdu 610051, Peoples R China
[2] Univ Elect Sci & Technol China, Natl Key Lab Sci & Technol Vacuum Elect, Chengdu 610051, Peoples R China
[3] Univ Elect Sci & Technol China, Inst High Energy Elect, Chengdu 610051, Peoples R China
关键词
Oscillators; slow-wave structure (SWS); traveling-wave amplifier; waveguides; POWER;
D O I
10.1109/TPS.2016.2630082
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
A new concept of oscillator based on a folded waveguide slow-wave structure (FWG SWS) is studied. The resonant cavity of the oscillator is formed by a section of FWG SWS, a length-adjustable waveguide, and a waveguide loaded by multilayer dielectric. The beam is synchronized with the forward wave on the SWS. If an FWG traveling-wave amplifier (TWA) is driven by this oscillator, there is a possibility that the amplifier and the oscillator share the same design and the same art of manufacturing and power supplier. A forward-wave oscillator based on a design of a TWA in 2-mm band is calculated by both a 1-D nonlinear code and particle-in-cell (PIC) simulation. From both the code and the simulation results, when the oscillator is 30-pitch long, the operation voltage 22 000 V and the start current is 3 mA at 138 GHz. When the oscillator is 22-pitch long, operation current 15 mA, and operation voltage 22400 V, simulation result shows that the output power is 58.32 W, and the efficiency is 17.26% at 133.2GHz. When both the voltage and length of the length-adjustable waveguide are tuned, the oscillator can operate within all the first dispersion band of the SWS. If only voltage is tuned, the oscillator can oscillate at several discrete frequencies.
引用
收藏
页码:24 / 29
页数:6
相关论文
共 13 条
  • [1] Ansoft Corp, 2010, ANS HFSS US REF
  • [2] Basten M. A., 2010, 2010 IEEE 37th International Conference on Plasma Sciences (ICOPS 2010), DOI 10.1109/PLASMA.2010.5533945
  • [3] Technology, Capabilities, and Performance of Low Power Terahertz Sources
    Chattopadhyay, Goutam
    [J]. IEEE TRANSACTIONS ON TERAHERTZ SCIENCE AND TECHNOLOGY, 2011, 1 (01) : 33 - 53
  • [4] Microfabrication of high-frequency vacuum electron devices
    Ives, RL
    [J]. IEEE TRANSACTIONS ON PLASMA SCIENCE, 2004, 32 (03) : 1277 - 1291
  • [5] BWO Generators for Terahertz Dielectric Measurements
    Komandin, Gennady A.
    Chuchupal, Sergey V.
    Lebedev, Sergey P.
    Goncharov, Yury G.
    Korolev, Anatoly F.
    Porodinkov, Oleg E.
    Spektor, Igor E.
    Volkov, Alexander A.
    [J]. IEEE TRANSACTIONS ON TERAHERTZ SCIENCE AND TECHNOLOGY, 2013, 3 (04) : 440 - 444
  • [6] Letizia Rosa, 2015, 2015 42nd IEEE International Conference on Plasma Science (ICOPS), DOI 10.1109/PLASMA.2015.7179504
  • [7] Theory and Design of Microwave-Tube Simulator Suite
    Li, Bin
    Yang, Zhong Hai
    Li, Jian Qing
    Zhu, Xiao Fang
    Huang, Tao
    Hu, Quan
    Hu, Yu Lu
    Xu, Li
    Ma, Jun Jian
    Liao, Li
    Xiao, Li
    He, Guo Xian
    [J]. IEEE TRANSACTIONS ON ELECTRON DEVICES, 2009, 56 (05) : 919 - 927
  • [8] Lukin Konstantin A., 2008, IEEE International Vacuum Electronics Conference (IVEC 2008), P388, DOI 10.1109/IVELEC.2008.4556547
  • [9] Myasin YA, 2004, CONFERENCE DIGEST OF THE 2004 JOINT 29TH INTERNATIONAL CONFERENCE ON INFRARED AND MILLIMETER WAVES AND 12TH INTERNATIONAL CONFERENCE ON TERAHERTZ ELECTRONICS, P609
  • [10] Rodgers J., 2005, P IEEE INT C PLASM S, P250