DocumentCode :
747594
Title :
Simulation Studies of a Relativistic Klystron With Strong Input Power
Author :
Wei, Song ; Guozhi, Liu ; Yuzheng, Lin ; Hao, Shao ; Yongpeng, Zhang ; Changhua, Chen
Author_Institution :
Dept. of Eng. Phys., Tsinghua Univ., Beijing
Volume :
36
Issue :
3
fYear :
2008
fDate :
6/1/2008 12:00:00 AM
Firstpage :
682
Lastpage :
687
Abstract :
As one of the potential high-power microwave devices on the level of gigawatts, relativistic klystron amplifier (RKA) can be used for power combination to further improve the radiation microwave power. Because of self-excited oscillation of the intense relativistic electron beam, the frequency and phase characteristics of general relativistic klystron devices are independent with the driven microwave pulse. In order to obtain frequency and phase locking, a method of improving the input power is put forward to inhibit these parasitic oscillations. This paper reports a particle-in-cell simulation study of the RKA´s characteristics under the condition of strong power feeding. By making use of the 500-keV 6-kA electron beam, the simulation results show that strong input power can inhibit the parasitical oscillations in cavity and modulate the beam very well with only one cavity. About 5.4-kA modulation current and a microwave with power of 1.4 GW, bandwidth of 5%, and efficiency of 50% are obtained. The new amplifier driven by the strong input power proves to be a potential device to attain high amplitude stability, high efficiency, high spectral purity, wide bandwidth, and low level of phase and amplitude noise.
Keywords :
computational electromagnetics; klystrons; microwave power amplifiers; oscillations; relativistic electron beams; amplitude stability; current 6 kA; efficiency 50 percent; electron volt energy 500 keV; frequency characteristics; frequency locking; high-power microwave devices; intense relativistic electron beam; microwave pulse; parasitic oscillations; particle-in-cell simulation; phase characteristics; phase locking; power 1.4 GW; relativistic klystron amplifier; self-excited oscillation; Bandwidth; Electron beams; Frequency; High power amplifiers; Klystrons; Low-noise amplifiers; Microwave amplifiers; Microwave devices; Optical modulation; Pulse amplifiers; High-power microwave (HPM); particle-in-cell (PIC) simulation; phase locking; relativistic klystron;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2008.923749
Filename :
4539886
Link To Document :
بازگشت