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Self-consistent nonlinear analysis of a frequency-quadrupling terahertz gyroklystron

Self-consistent nonlinear analysis of a frequency-quadrupling terahertz gyroklystron
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摘要 This paper analyses a three-cavity frequency-quadrupling terahertz gyroklystron with successive frequency-doubling in each cavity with self-consistent nonlinear theory. The beam-wave interaction efficiency and the electron bunching process are studied. The variation of output efficiency with the length of drift tubes and output power and the variation of Ohmic loss with the length of output cavity are considered. Numerical simulations predict an optimal output efficiency of 1.8%, a power output of more than 2 kW and a gain of 33 dB after taking into account Ohmic losses when the frequency-quadrupling gyroklystron, driven by a 40-kV, 3-A electron beam and 1 Watt input power, operates at 225 CHz. This paper analyses a three-cavity frequency-quadrupling terahertz gyroklystron with successive frequency-doubling in each cavity with self-consistent nonlinear theory. The beam-wave interaction efficiency and the electron bunching process are studied. The variation of output efficiency with the length of drift tubes and output power and the variation of Ohmic loss with the length of output cavity are considered. Numerical simulations predict an optimal output efficiency of 1.8%, a power output of more than 2 kW and a gain of 33 dB after taking into account Ohmic losses when the frequency-quadrupling gyroklystron, driven by a 40-kV, 3-A electron beam and 1 Watt input power, operates at 225 CHz.
机构地区 THz Research Center
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2009年第12期5507-5510,共4页 中国物理B(英文版)
基金 Project supported by National Natural Science Foundation of China (Grant No 10676110) 973 Program of China (Grant No2007CB310401)
关键词 frequency-quadrupling gyroklystron TERAHERTZ self-consistent nonlinear analysis frequency-quadrupling gyroklystron, terahertz, self-consistent nonlinear analysis
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参考文献8

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