期刊文献+

W波段回旋行波管输入输出段的改进设计 被引量:2

Improved design of input and output structures of W-band gyro-TWT
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摘要 在回旋行波放大器的设计中,输入输出段的性能直接影响到整管输出功率、效率及增益。设计了一种采用渐变过渡段的输入耦合器来减少电子注在前端的截获,而且略微地提高了耦合特性,有效带宽达到4.06GHz。采用二级切比雪夫渐变波导作为输出结构的耦合输出段,从仿真结果得到,在整个工作频段内,该结构中TE01工作模式的反射低于-20dB,TE01模向杂模TE02和TE03的耦合分别在-20dB和-30dB以下。 An improved input coupler with tapered transitional section and output structure adopting cascaded Chebyshev waveguide,working in TE01 mode, has been designed for W band gyro-TWT. By means of theoretic analysis and numerical corn putation in Matlab,ihe outer radius, the length of input coupler's cavity and two contours of the section of coupling output are ob tained. According to the optimized results in HFSS, the bandwidth of the improved input coupler which meets the demand of SH less than -20 dB and S21 greater than -0.1 dB is 4.06 GHz. The cascaded Chebyshev structure has good performance on trans mitring TE01 mode and suppressing spurious modes with acceptable length.
出处 《强激光与粒子束》 EI CAS CSCD 北大核心 2013年第3期693-698,共6页 High Power Laser and Particle Beams
关键词 回旋行波管 输入耦合器 渐变过渡段 耦合输出段 二级切比雪夫渐变 gyro-TWT input coupler tapered transitional section output coupling cascaded Chebyshev
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参考文献7

  • 1McDermott D B,Song H H,Yosuke H. Design of a W band TE01 mode gyrotron traveling-wave amplifier with high power and broadband capabilities[J].IEEE Transactions on Plasma Sciences,2002,(03):897-899.
  • 2Chu K R. Overview of research on the gyrotron traveling-wave amplifier[J].IEEE Transactions on Plasma Sciences,2002,(03):903-908.doi:10.1109/TPS.2002.801560.
  • 3Chu K R. The electron cyclotron maser[J].Reviews of Modern Physics,2004,(2):492-535.doi:10.1103/RevModPhys.76.489.
  • 4Nusinovich GS. Review of the theory of mode interaction in gyrodevices[J].IEEE Transactions on Plasma Sciences,1999,(02):313-326.
  • 5Chu K R,Drobot AT,Granatstein VL. Characteristic and optimum opearting parameters of a gyrotron traveling wave amplifier[J].IEEE Transactions on Microwave theory and Techniques,1979,(02):178-185.
  • 6Barnett L R,Chu K R,Baird J M. Gain,saturation and bandwidth measurements of the NRL gyrotron traveling wave tube[A].1979.872-873.
  • 7罗勇,李宏福,赵青,邓学,徐勇,王晖.回旋速调放大器输入谐振腔分析及数值模拟[J].强激光与粒子束,2004,16(3):358-362. 被引量:13

二级参考文献13

  • 1Garven M, Calame J P, Danly B G,et al. Experimental studies of a four-cavity, 35GHz gyroklystron amplifier[J]. IEEE Trans Plasma Sci, 2000, 28(3): 672-680.
  • 2Calame J P, Carven M, Choi J J,et al. Experimental studies of bandwidth and power production in three-cavity, 35GHz gyroklystron amplifier[J]. Phy Plasma, 1999,6:285-297.
  • 3Levush B, Blank M, Danly B G,et al. Modeling and design of millimeter wave gyroklystrons[J]. Phys Plasmas Sci, 1999, 6(5): 2233-2240.
  • 4Zasypkin E V, Gachev I G, SAntakov I I,et al. Study of a W-band pulsed 200kW gyroklystron amplifier in Conf[A]. Dig 24th Int Con Infrared Millimeter Waves[C]. Monterey, California, 1999. W-A2.
  • 5Tantawi S G, Main W T, Latham W T,et al. High-power X-band amplification from an overmoded three-cavity gyroklystron with a tunable penultimate cavity[J]. IEEE Trans Plasma Sci, 1992, 20: 205-215.
  • 6Blank M, Danly B G, Levush B. Circuit design of a wideband W-band gyroklystron for radar applications[J]. IEEE Trans Plasma Sci, 1998, 26 (3): 426-432
  • 7Tolkachev A A. Gyroklystron-based 35GHz radar for observation on space objects in Proc[A]. 22nd Int Conf Infrared Millimeter Waves[C]. Wintergreen,VA,1997.
  • 8Blank M, Danly B G, Levush B.Experiment demonstration of W-band gyroklystron amplifiers with improved gain and efficiency[J]. IEEE Trans Plasma Sci, 2000, 28(3): 706-712.
  • 9Danly B G, Blank M, Calame J P,et al. Development and testing of a high-average power, 94GHz gyroklystron[J]. IEEE Trans Plasma Sci, 2000, 28 (3): 713-724.
  • 10Blank M, Danly B G, Levush B,et al. Experimental demonstration of a W-band (94GHz) gyroklystron amplifier[J]. IEEE Trans Plasma Sci, 1999, 27 (2): 405-411.

共引文献12

同被引文献29

  • 1罗勇,李宏福.回旋速调管放大器注-波互作用分析[J].强激光与粒子束,2005,17(5):724-728. 被引量:7
  • 2姚列明,杨中海,李斌,黄桃.行波管收集极的热分析[J].强激光与粒子束,2006,18(1):97-100. 被引量:15
  • 3高鹏,杨中海,李斌,李建清,胡玉禄,朱小芳,廖莉.螺旋线行波管1维多频非线性理论与模拟[J].强激光与粒子束,2007,19(3):459-462. 被引量:7
  • 4袁学松,鄢扬,傅文杰,钟任斌,刘盛纲.220GHz回旋单腔管的设计[J].强激光与粒子束,2007,19(10):1677-1679. 被引量:10
  • 5Baik C W,Jeon S G,Kim D H,et al.Third-harmonic frequency multiplication of a two-stage tapered gyrotron TWT amplifier[J].IEEE Trans on Electron Devices,2005,52(5):829-838.
  • 6Morag G,Calame J P,Bruce G D,et al.A gyrotron-traveling-wave tube amplifier experiment with a ceramic loaded interaction region[J].IEEE Trans on Plasma Science,2002,30(3):885-893.
  • 7Wang Efeng,Zeng Xu.Experimental study of high-power gyrotron traveling-wave tube with periodic lossy material loading[J].IEEE Trans on Plasma Science,2002,40(7):1846-1853.
  • 8Dawson J M.One-dimensional plasma model[J].Phys Fluid,1962,5(4):445-495.
  • 9Landen A B,Birdsall C K.Theory of plasma simulation using finite-size particle[J].Phys Fluid,1970,13(4):2115-2122.
  • 10Lin A T,Yang Z H,Chu K R.Particle simulation of a high-power gyrotron oscillator[J].IEEE Trans on Plasma Science,1988,16(2):129-134.

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