DocumentCode :
227372
Title :
Design of a novel coupled-cavity circuit for a 35 GHz wideband Traveling-Wave Tube
Author :
Yang Liu ; Shangyun Wu ; Jiangfeng Ye ; Guiqiang Zheng
Author_Institution :
Inst. of Electron. Eng., China Acad. of Eng. Phys., Mianyang, China
fYear :
2014
fDate :
June 30 2014-July 4 2014
Firstpage :
1
Lastpage :
2
Abstract :
The design and analysis of a wideband coupled-cavity Traveling-Wave Tube (TWT) operating at 35 GHz is presented. The interaction circuit employs a novel coupled-cavity circuit, which is based on the combination of a three-slot ladder coupled-cavity slow-wave structure and round electron beam. In this paper, the high frequency properties such as dispersion characteristics, beam-wave interaction impedance are studied and optimized, and combined with design of the well-matched couplers, a 3-D particle-in-cell model of the coupled-cavity TWT is constructed. The electromagnetic characteristics and the beam-wave interaction of the tube are investigated. From our calculations, it can produce saturated output power over 900 Watts in 4 GHz bandwidth ranging from 33 to 37 GHz when the cathode voltage and beam current are set to 16 kV and 500 mA, respectively. The corresponding saturated gain and electron efficiency can reach over 43.3 dB and 11.4%. Compared with the Hughes-type and double staggered ladder coupled-cavity TWT, our designed TWT has absolute advantage in bandwidth, and also it is more competitive in power capability and electron efficiency.
Keywords :
cathodes; millimetre wave amplifiers; millimetre wave tubes; slow wave structures; travelling wave amplifiers; 3D particle-in-cell model; Hughes-type coupled-cavity TWT; bandwidth 33 GHz to 37 GHz; bandwidth 35 GHz; bandwidth 4 GHz; beam current; beam-wave interaction impedance; cathode voltage; coupled-cavity circuit; current 500 mA; dispersion characteristics; double staggered ladder coupled-cavity TWT; electromagnetic characteristics; electron efficiency; high frequency properties; saturated output power; voltage 16 kV; wideband traveling-wave tube; Bandwidth; Cavity resonators; Electron beams; Electron tubes; Gain; Impedance; Integrated circuit modeling;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Vacuum Electron Sources Conference (IVESC), 2014 Tenth International
Conference_Location :
St. Petersburg
Print_ISBN :
978-1-4799-5770-5
Type :
conf
DOI :
10.1109/IVESC.2014.6892024
Filename :
6892024
Link To Document :
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