• High Power Laser and Particle Beams
  • Vol. 31, Issue 8, 83101 (2019)
Wang Zicheng1、*, Qu Zhaowei1, Shang Xinwen1, Cao Linlin1、2, Tang Bojun1, and Xiao Liu11
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: 10.11884/hplpb201931.180312 Cite this Article
    Wang Zicheng, Qu Zhaowei, Shang Xinwen, Cao Linlin, Tang Bojun, Xiao Liu1. RF system of a 220 GHz extended interaction klystron[J]. High Power Laser and Particle Beams, 2019, 31(8): 83101 Copy Citation Text show less
    References

    [1] John H B, Richard J D, Colin D J, et al. Vacuum electronic high power terahertz sources[J]. IEEE Trans on Terahertz Science and Technology, 2011, 1(1):54-75.

    [2] Albert R, Dave B, Mark H, et al. Sub-millimeter waves from a compact, low voltage extended interaction klystron[C]//Proc of IRMMW-THz. 2007:1-3.

    [3] Mark H, Albert R, Peter H, et al. A compact, high power, sub-millimeter-wave extended interaction klystron[C]//Proc of IEEE International Vacuum Electronics Conference. 2008:297.

    [4] Peter H, Albert R, Richard D, et al. Compact sources of high RF power for DNP applications[C]//Proc of IEEE International Vacuum Electronics Conference. 2014:221-222.

    [5] Albert R, Mark H, Peter H, et al. Development of sub-millimeter high power compact EIKs for DNP and radar applications[C]//Proc of IEEE International Vacuum Electronics Conference. 2017:ID62.

    [6] Richard D, Albert R, Peter H, et al. Design and fabrication of terahertz extended interaction klystrons[C]//Proc of IRMMW-THz. 2010:1-3.

    [7] Richard D, Albert R, Peter H, et al. Fabrication techniques for a THz EIK[C]//Proc of IEEE International Vacuum Electronics Conference. 2010:181-182.

    [9] Zhang Kaichun, Wu Zhenhua, Liu Shenggang. Study of an extended interaction oscillator with a rectangular reentrance coupled-cavity in Terahertz region[J]. J Infrared Milli Terahz Waves, 2009, 30:308-318.

    [10] Zhu Xiaofang, Jin Xiaolin, Huang Lili, et al. Study of a W-band sheet-beam extended interaction klystron[C]//Proc of IEEE International Vacuum Electronics Conference. 2015:si0240.

    [11] Zeng Zaojin, Zhou Lin, Li Wenjun, et al. Design and optimization of a W-band extended interaction klystron amplifier[C]//Proc of IEEE International Vacuum Electronics Conference. 2015:si0369.

    [12] Gao Dongping, Zhang Zhaochuan, Ding Yaogen, et al. Design of a continuous wave Ka-band extended interaction klystron[C]//Proc of IEEE International Vacuum Electronics Conference. 2014:355-356.

    [13] Chen Shuyuan, Ran Cunjun, Wang Yong. Equivalent circuit of multi-gap output cavity for sheet beam EIK[C]//Proc of IEEE International Vacuum Electronics Conference. 2014:347-348.

    [14] Qu Zhaowei, Zhang Zhiqiang, Ding Yaogen, et al. Research progress of a W-band 100-watts extended interaction oscillator[C]//Proc of IEEE International Vacuum Electronics Conference. 2017:ID94.

    [19] Liu Qinglun, Wang Zicheng, Liu Pukun, et al. A THz backward-wave oscillator based on a double-grating rectangular waveguide[J]. IEEE Transactions on Electron Devices, 2013, 60(4):1463-1468.

    Wang Zicheng, Qu Zhaowei, Shang Xinwen, Cao Linlin, Tang Bojun, Xiao Liu1. RF system of a 220 GHz extended interaction klystron[J]. High Power Laser and Particle Beams, 2019, 31(8): 83101
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