DocumentCode
917167
Title
Experimental study of a plasma-filled backward wave oscillator
Author
Zhai, Xiaoling ; Garate, Eusebio ; Prohaska, Robert ; Benford, Gregory ; Fisher, Amnon
Author_Institution
Dept. of Phys., California Univ., Irvine, CA, USA
Volume
21
Issue
1
fYear
1993
fDate
2/1/1993 12:00:00 AM
Firstpage
142
Lastpage
150
Abstract
Experimental studies of a plasma-filled X -band backward-wave oscillator (BWO) are presented. Depending on the background gas pressure, microwave frequency upshifts of up to 1 GHz appeared along with an enhancement by a factor of 7 in the total microwave power emission. The bandwidth of the microwave emission increased from ⩽0.5 GHz to 2 GHz when the BWO was working at the RF power enhancement pressure region. The RF power enhancement appeared over a much wider pressure range in a high beam current case (10-100 mT for 3 kA) than in a lower beam case (80-115 mT for 1.6 kA). The plasma-filled BWO has higher power output than the vacuum BWO over a broader region of magnetic guide field strength. Trivelpiece-Gould modes (T-G modes) are observed with frequencies up to the background plasma frequency in a plasma-filled BWO. Mode competition between the T-G modes and the X -band Tm01 mode prevailed when the background plasma density was below 6×1011 cm-3 . At a critical background plasma density of ≃8×1011 cm-3 power enhancement appeared in both X -band and the T-G modes. Power enhancement of the S -band in this mode collaboration region reached up to 8 dB. Electric fields measured by the Stark-effect method were as high as 34 kV/cm while the BWO power level was 80 MW. These electric fields lasted throughout the high-power microwave pulse
Keywords
Stark effect; backward wave tubes; electric fields; microwave oscillators; plasma filled waveguides; 0.5 to 2 GHz; 1.6 kA; 10 to 115 mtorr; 3 kA; 8 dB; 80 MW; RF power enhancement pressure region; S-band; Stark-effect method; T-G modes; Tm01 mode; Trivelpiece-Gould modes; background gas pressure; bandwidth; critical background plasma density; electric fields; high-power microwave pulse; magnetic guide field strength; microwave emission; microwave frequency upshifts; mode collaboration region; mode competition; plasma-filled BWO; plasma-filled X-band backward-wave oscillator; power enhancement; Bandwidth; Collaboration; Microwave frequencies; Microwave measurements; Microwave oscillators; Plasma density; Plasma waves; Power measurement; Pulse measurements; Radio frequency;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.221113
Filename
221113
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