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X波段短脉冲相对论返波管设计与初步实验
引用本文:胡林林, 陈洪斌, 马国武, 等. X波段短脉冲相对论返波管设计与初步实验[J]. 强激光与粒子束, 2007, 19(06).
作者姓名:胡林林  陈洪斌  马国武  孟凡宝  周传明
作者单位:1.中国工程物理研究院 应用电子学研究所, 四川 绵阳 621 900;;;2.中国工程物理研究院 研究生部, 四川 绵阳 621 900;;;3.中国工程物理研究院, 四川 绵阳 621 900
摘    要:对基于短电子束脉冲超辐射机理的X波段相对论返波管进行了优化设计和粒子模拟,结果表明:在超辐射机理作用下,该器件能实现高峰值功率和高功率转换效率的微波辐射。在小型Tesla脉冲源基础上设计了阻抗变换段、二极管、磁场系统等装置,建立了一套小型窄脉冲电子加速器,以此为实验平台在低磁场条件下进行了器件的初步实验研究。在磁场0.73 T、束压约380 kV、束流约4.5 kA、脉宽3.1 ns条件下,实验获得的微波脉冲峰值功率约360 MW,脉宽1.10 ns,上升沿800 ps,频率9.15 GHz,功率转换效率为21%。

关 键 词:高功率微波   相对论返波管   超辐射   X波段   粒子模拟

Design and preliminary experimental study of X-band short pulse relativistic backward wave oscillator
hu lin-lin, chen hong-bin, ma guo-wu, et al. Design and preliminary experimental study of X-band short pulse relativistic backward wave oscillator[J]. High Power Laser and Particle Beams, 2007, 19.
Authors:hu lin-lin  chen hong-bin  ma guo-wu  meng fan-bao  zhou chuan-ming
Affiliation:1. Institute of Applied Electronics,CAEP,P.O.Box 919-1015,Mianyang 621900,China;;;2. Graduate School of China Academy of Engineering Physics,Mianyang 621900,China;;;3. China Academy of Engineering Physics,Mianyang 621900,China
Abstract:An optimized X-band relativistic backward wave oscillator (RBWO) based on superradiance mechanism of short electron beam was designed and simulated numerically. The simulation results indicate that the RBWO can realize microwave radiation with high peak power and high power conversion efficiency under superradiace mechanism. A small narrow pulse electron accelerator is build based on a compact Tesla pulse source along with design of a resistance conversion section, a diode and a magnetic system. The preliminary experiment was performed at low magnetic field condition. For guiding magnetic field 0.73 T, beam voltage 380 kV, beam current 4.5 kA and pulse width 3.1 ns, microwave pulses with about 360 MW peak power, 1.10 ns pulse width and 800 ps risetime were generated, and the conversion eff
Keywords:high power microwave  relativistic backward wave oscillator  superradiance  x-band  particle simulation
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