DocumentCode
1401898
Title
Gyro-TWT with a helical operating waveguide: new possibilities to enhance efficiency and frequency bandwidth
Author
Denisov, Gregory G. ; Bratman, Vladimir L. ; Phelps, Alan D R ; Samsonov, Sergei V.
Author_Institution
Inst. of Appl. Phys., Acad. of Sci., Nizhny Novgorod, Russia
Volume
26
Issue
3
fYear
1998
fDate
6/1/1998 12:00:00 AM
Firstpage
508
Lastpage
518
Abstract
A helical corrugation of the inner surface of an oversized cylindrical waveguide provides, for certain parameters, an almost constant value of group velocity and close to zero longitudinal wavenumber of an eigenwave for a very broad frequency band. The use of such a helical waveguide as an operating section of a gyrotron traveling wave tube (gyro-TWT) allows significant widening of its bandwidth and an increase in the efficiency at very large particle velocity spreads. In this paper, the new concept is confirmed by theoretical analysis and “cold” measurements of the helical waveguide dispersion. Results of a linear and nonlinear theory of the helical gyro-TWT as well as two designs for subrelativistic (80 keV, 20 A) and relativistic (300 keV, 80 A) electron beams are also presented. For both designs, parameters providing a very broad frequency band (about 20%) and high efficiency (above 30%) have been found. When the transverse velocity spread is increased from zero up to a very high value of 40%, simulations showed only a 20%-30% narrowing in the frequency band and a 20% decrease in electron efficiency. The theoretical analysis demonstrates important advantages of the helical gyro-TWT over the “smooth” one in frequency bandwidth, sensitivity to electron velocity spread, and stability to parasitic self-excitation
Keywords
circular waveguides; gyrotrons; helical waveguides; travelling wave tubes; 20 A; 300 keV; 80 A; 80 keV; eigenwave; electron efficiency; electron velocity spread; enhance efficiency; frequency bandwidth; gyro-TWT; gyrotron traveling wave tube; helical corrugation; helical operating waveguide; helical waveguide; helical waveguide dispersion; linear theory; nonlinear theory; oversized cylindrical waveguide; parasitic self-excitation; particle velocity; relativistic electron beams; subrelativistic electron beams; theoretical analysis; transverse velocity spread; Bandwidth; Corrugated surfaces; Dispersion; Electron beams; Frequency; Gyrotrons; Stability analysis; Surface waves; Waveguide components; Waveguide theory;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.700785
Filename
700785
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