DocumentCode
1402163
Title
A new algorithm for solving Maxwell´s equations in high-power microwave device simulations
Author
Chih-Chien Lin ; Lin, Anthony T.
Author_Institution
Dept. of Phys., California Univ., Los Angeles, CA, USA
Volume
26
Issue
3
fYear
1998
fDate
6/1/1998 12:00:00 AM
Firstpage
893
Lastpage
900
Abstract
Using the Coulomb gauge, an algorithm for solving Maxwell´s equations that is capable of isolating the solenoidal current component from the total current has been developed. The electromagnetic field arising from the solenoidal current is expanded in terms of Bessel´s functions. It is sufficient to retain only a few dominant global electromagnetic modes to simulate most microwave devices. Electrostatic modes that are localized within the beam region are followed by utilizing B-splines. The new code was used to investigate the plasma effect on ripple wall backward-wave oscillators and the self-field effect on gyro backward-wave oscillators. Simulation results show that the plasma response to the excited wave is in phase if the plasma frequency is less than the wave frequency. It is also demonstrated by simulations that the presence of a virtual cathode tends to increase the device output frequency and to reduce the interaction efficiency
Keywords
Bessel functions; Maxwell equations; backward wave oscillators; gyrotrons; microwave oscillators; space charge; splines (mathematics); vircators; B-splines; Bessel´s functions; Coulomb gauge; Maxwell´s equations; algorithm; beam region; device output frequency; electromagnetic field; electrostatic modes; excited wave; global electromagnetic modes; gyro backward-wave oscillator; high-power microwave device simulations; interaction efficiency; localized modes; microwave devices; plasma effect; plasma frequency; plasma response; ripple wall backward-wave oscillators; self-field effect; solenoidal current; solenoidal current component; total current; virtual cathode; wave frequency; Electromagnetic devices; Electromagnetic fields; Electrostatics; Frequency; Maxwell equations; Microwave devices; Microwave oscillators; Plasma devices; Plasma simulation; Plasma waves;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.700864
Filename
700864
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