Volume 30 Issue 6
Jun.  2018
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Wei Yuanzhang, Li Shifeng, Wang Zhanliang, et al. Periodic permanent focusing magnet of relativistic klystron[J]. High Power Laser and Particle Beams, 2018, 30: 063007. doi: 10.11884/HPLPB201830.170468
Citation: Wei Yuanzhang, Li Shifeng, Wang Zhanliang, et al. Periodic permanent focusing magnet of relativistic klystron[J]. High Power Laser and Particle Beams, 2018, 30: 063007. doi: 10.11884/HPLPB201830.170468

Periodic permanent focusing magnet of relativistic klystron

doi: 10.11884/HPLPB201830.170468
  • Received Date: 2017-11-17
  • Rev Recd Date: 2018-01-16
  • Publish Date: 2018-06-15
  • In order to explore the miniaturized relativistic klystron amplifier(RKA), we develop the theoretical analysis and simulation on the periodic permanent magnet (PPM) of the coaxial RKA. The Halbach arrays are applied to this PPM system and generate periodic cusped magnetic field. We evaluate the radial and axial components of the PPM field and present the characteristics of the magnetic distribution. Based on our expressions of the magnetic distribution, we get the transmission stability condition of the annular IREB in the PPM system for the coaxial waveguide. According to the stability condition, we design and optimize a PPM system for a Ka band coaxial RKA. Then the optimized period and amplitude of the PPM system are obtained. The results of the research show that the PPM system can focus the electron beam with voltage of 500 kV and current of 6 kA in the Ka band coaxial RKA, while the period and amplitude of the PPM system are 18 mm, 0.33 T, respectively. In addition, the coaxial RKA can stably generate millimeter wave with power of 1 GW. In a word, it is possible that the PPM system can be applied to the high power coaxial RKA.
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  • [1]
    Benford J, Swegle J A. High power microwave. 2nd ed. Beijing: National Defense Industry Press, 2009: 8-10
    [2]
    McDemott D B, Balkcum A J, Phillips R M, et al. Periodic permanent magnet focusing of an annular electron beam and its application to a 250 MW ubitron free-electron maser[J]. Physics of Plasmas, 1995, 2(11): 4332-4337. doi: 10.1063/1.870988
    [3]
    Yang Jianhua, Zhang Yazhou, Zhang Jiande, et al. Propagation of annular IREB in periodic permanent magnetic (PPM) field[J]. High Power Laser and Particle Beams, 2002, 14(5): 739-742.
    [4]
    周传明, 刘国治, 刘永贵, 等. 高功率微波源[M]. 北京: 原子能出版社, 2007: 269-309.

    Zhou Chuanming, Liu Guozhi, Liu Yonggui, et al. High-power microwave sources. Beijing: Atomic Energy Press, 2007: 269-309
    [5]
    Liu Zhenbang, Huang Hua, Jin Xiao, et al. Investigation of the phase stability of an X-band long pulse multibeam relativistic klystron amplifier[J]. Physics of plasmas, 2016, 23: 093110. doi: 10.1063/1.4962760
    [6]
    李士锋, 黄华, 段兆云, 等. Ka波段GW级同轴扩展互作用相对论速调管放大器的仿真研究[C]//中国电子学会真空电子学分会第二十届学术年会, 2016.

    Li Shifeng, Huang Hua, Duan Zhaoyun, et al. Simulation of Ka-band gigawatt coaxial extended interaction relativistic klystron amplifier//20th CVE of Chinese Institute of Electronics, 2016
    [7]
    Robert J B, Schamiloglu E. High-power microwave sources and technologies. Beijing: Tsinghua University Press, 2005: 250-252
    [8]
    Zhu Z Q, Howe D. Halbach permanent magnet and machines and applications: A review[J]. IEE Proc-Electr Power Appl, 2001, 148(2): 299-308.
    [9]
    缪茜茜. 同轴永磁Halbach结构磁路及其应用研究[D]. 长沙: 国防科技大学, 2004: 45-50.

    Miao Xixi. Investigation of coaxial permanent magnet Halbach circuit. Changsha: National University of Defense Technology, 2004: 45-50
    [10]
    Freund H P, Jackson R H, Pershing D E, et al. Nonlinear theory of the free-electron laser based upon a coaxial hybrid wiggler[J]. Physics of Plasmas, 1994, 1(4): 1046-1059. doi: 10.1063/1.870785
    [11]
    杨儒贵, 张世昌, 金建铭, 等. 高等电磁场理论[M]. 北京: 高等教育出版社, 2008: 498-501.

    Yang Rugui, Zhang Shichang, Jin Jianming, et al. Advanced electromagnetic theory. Beijing: Higher Education Press, 2008: 498-501
    [12]
    林秉初, 汪健如. 电子光学[M]. 北京: 清华大学出版社, 2002: 82-84.

    Lin Bingchu, Wang Jianru. Electron optics. Beijing: Tsinghua University Press, 2002: 82-84
    [13]
    王战亮. 带状电子注的形成、传输与应用研究[D]. 成都: 电子科技大学, 2010: 72-78.

    Wang Zhanliang. Formation, transportation and application of sheet electron beam. Chengdu: University of Electronic Science and Technology of China, 2010: 72-78
    [14]
    Schachter L. Beam-wave interaction in periodic and quasi-periodic structures[M]. Berlin: Heidelberg, 2011: 126-130.
    [15]
    Miller R B. The introduction to the intense charged particle beams[M]. Beijing: Energy Press, 1990: 83-127.
    [16]
    马乔生, 张永辉, 常安碧, 等. 环形电子束在周期永磁场中传输的理论研究[J]. 核技术, 2005, 28(7): 505-509. https://www.cnki.com.cn/Article/CJFDTOTAL-HJSU200507003.htm

    Ma Qiaosheng, Zhang Yonghui, Chang Anbi, et al. Propagation of annular IREB in periodic permanent magnet. Nuclear Techniques, 2005, 28(7): 505-509 https://www.cnki.com.cn/Article/CJFDTOTAL-HJSU200507003.htm
    [17]
    Mental J T, Quate C F, Yocom W H. Electron beam focusing with periodic permanent magnet fields[J]. Proceedings of IRE, 1954, 42(5): 800-810.
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