DocumentCode :
1267054
Title :
Linear Analysis of Dielectric-Lined Azimuthally Periodic Circular Waveguide for TWT
Author :
Liu, Yang ; Wei, Yanyu ; Gong, Yubin ; Gong, Huarong ; Xu, Jin ; Yue, Lingna ; Wang, Wenxiang
Author_Institution :
Nat. Key Lab. of High-Power Vacuum Electron., Univ. of Electron. Sci. & Technol. of China, Chengdu, China
Volume :
39
Issue :
8
fYear :
2011
Firstpage :
1673
Lastpage :
1679
Abstract :
The electron beam interaction in a novel slow-wave structure (SWS) called dielectric-lined azimuthally periodic circular waveguide (DLAP-CW) is analyzed in a linear frame. Moreover, the linear gain characteristics of the DLAP-CW are obtained by the self-consistent relativistic field theory. Analytical solutions for the hot dispersion characteristics are derived, and the complicated dispersion equations have been numerically solved with MATLAB. The small-signal growth rate is calculated for dimensions of the improved SWS and the parameters of the electron beam. It is shown that selecting the appropriate thickness and location of the metal rods increases the small-signal gain (dielectric constant held fixed). In addition, the gain of the DLAP-CW increases as the beam current increases, and the beam voltage not obviously influences the small-signal gain. Furthermore, a comparison of the small-signal gain of this structure with a conventional dielectric-lined circular waveguide (DL-CW) is made, and the results validate that the novel SWS has an advantage over the DL-CW on the electron efficiency, potentially resulting in a higher gain traveling-wave-tube circuit.
Keywords :
circular waveguides; dielectric waveguides; permittivity; relativistic electron beams; slow wave structures; DL-CW; DLAP-CW; MATLAB; SWS; TWT; analytical solutions; beam current; beam voltage; complicated dispersion equations; dielectric constant; dielectric-lined azimuthally periodic circular waveguide; dielectric-lined circular waveguide; electron beam interaction; electron efficiency; hot dispersion characteristics; linear analysis; linear gain characteristics; metal rods; self-consistent relativistic field theory; slow-wave structure; small-signal gain; small-signal growth rate; traveling-wave-tube circuit; Bandwidth; Dielectric constant; Dispersion; Electron beams; Equations; Gain; Metals; Azimuthally periodic waveguide; millimeter-wave traveling-wave tube (TWT); slow-wave structure (SWS); small-signal gain;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2011.2158245
Filename :
5944977
Link To Document :
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