DocumentCode :
1056210
Title :
Calculation of DC space-charge fields in a traveling-wave amplifier in the large signal regime
Author :
Chang, Chia-Lie ; Antonsen, Thomas M., Jr. ; Chernin, David P. ; Levush, Baruch ; Nelson, Eric M. ; Petillo, John J. ; Whaley, David R.
Author_Institution :
Sci. Applic. Int. Corp., McLean, VA, USA
Volume :
32
Issue :
3
fYear :
2004
fDate :
6/1/2004 12:00:00 AM
Firstpage :
1028
Lastpage :
1039
Abstract :
A fully two-dimensional (2-D) dc space charge model has been implemented in a large-signal traveling-wave amplifier code. The simulation algorithm takes an iterative approach by alternately solving the Poisson equation and the beam trajectory equations to converge toward a self-consistent steady-state solution. This approach is similar to that employed in steady-state gun codes. However, it is well known from gun simulations that the iterative algorithm can be slow to converge. We have found the slow convergence is due to a convective numerical instability. To speed up convergence, we implemented and tested stabilization schemes based on mixing one-dimensional and 2-D Poisson potentials during the iteration cycles. These schemes are shown to accelerate convergence considerably. The fully 2-D dc space-charge model permits accurate treatment of the axial dc space-charge field in the computation of the large signal gain and efficiency, taking into account the fast variation of beam parameters along the device axis. Therefore, it can be applied to a mismatched beam with large scalloping motion. The methodology of incorporating dc space charge is general and could be incorporated in other large signal codes.
Keywords :
Poisson equation; amplification; iterative methods; numerical stability; plasma simulation; space charge; travelling wave amplifiers; Poisson equation; axial dc space-charge field; beam parameters; beam trajectory equations; convective numerical instability; dc space-charge fields; device axis; fully two-dimensional dc space-charge model; gun simulations; iteration cycles; iterative algorithm; iterative approach; large signal regime; large-signal traveling-wave amplifier code; mismatched beam; one-dimensional Poisson potentials; scalloping motion; self-consistent steady-state solution; signal efficiency; signal gain; simulation algorithm; slow convergence; stabilization schemes; steady-state gun codes; traveling-wave amplifier; two-dimensional Poisson potentials; Convergence of numerical methods; Electron beams; Iterative algorithms; Iterative methods; Laboratories; Poisson equations; Radio frequency; Space charge; Steady-state; Two dimensional displays; Electron beams; TWTs; iterative methods; numerical analysis; numerical stability; simulation software; space charge; traveling-wave amplifiers; traveling-wave tubes;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2004.827610
Filename :
1321263
Link To Document :
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