DocumentCode :
1524239
Title :
High efficiency, phase-locked operation of the harmonic-multiplying inverted gyrotwystron oscillator
Author :
Rodgers, J. ; Guo, H. ; Granatstein, Victor L. ; Chen, S.H. ; Nusinovich, Gregory S. ; Walter, M. ; Zhao, J.
Author_Institution :
Lab. for Plasma Res., Maryland Univ., College Park, MD, USA
Volume :
27
Issue :
2
fYear :
1999
fDate :
4/1/1999 12:00:00 AM
Firstpage :
412
Lastpage :
421
Abstract :
The inverted gyrotwystron (phigtron) is a millimeter wave frequency-doubling amplifier that has been demonstrated to produce over 300 kW peak power at twice the input frequency (centered at fin =16.85 GHz and fout=33.7 GHz) over a 0.5% bandwidth with a saturated gain of 30 dB and efficiency greater than 35%. The device has also been studied both theoretically and experimentally in a different operating regime where frequency-doubled, phase-locked oscillation is possible. A signal, injected via a fundamental gyro-traveling wave tube input section, modulated a 55 kV, 10 A electron beam. After transit through a drift section, the prebunched electron beam produced phase-locked, second harmonic oscillations in a TE03 mode output cavity. RF output centered at either of two frequencies, 34.42 and 34.62 GHz, with a maximum output power of 180 kW, an efficiency of 32% and a locked signal gain of 35 dB was measured. A theoretical prediction of locking bandwidth, a design overview, and the experimental results are presented followed by a summary and discussion of the results
Keywords :
gyrotrons; harmonic oscillators; millimetre wave oscillators; millimetre wave tubes; phase locked oscillators; travelling wave tubes; 10 A; 180 kW; 32 percent; 34.42 GHz; 34.62 GHz; 35 dB; 55 kV; EHF; TE03 mode output cavity; design overview; drift section; fundamental gyro-TWT input section; harmonic-multiplying gyrotwystron oscillator; high efficiency operation; inverted gyrotwystron oscillator; locking bandwidth; millimeter wave oscillator; phase-locked operation; phigtron; prebunched electron beam; second harmonic oscillations; Bandwidth; Electron beams; Electron tubes; Gain; Optical modulation; Power amplifiers; Power generation; RF signals; Radio frequency; Tellurium;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/27.772268
Filename :
772268
Link To Document :
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