DocumentCode :
2212005
Title :
Optimization of the signal growth rate in a class of multicavity RKOs with axially varying geometry using a parallel real-valued evolutionary algorithm
Author :
Merkle, L.D. ; Luginsland, J.W.
Author_Institution :
Dept. of Comput. Sci., US Air Force Acad., CO, USA
fYear :
2000
fDate :
4-7 June 2000
Firstpage :
273
Abstract :
Summary form only given. The relativistic klystron oscillator (RKO) is a high power microwave (HPM) source based on enhancing mature non-relativistic klystron technology, in which the kinetic energy of a population of electrons is converted into coherent microwave radiation. There is significant interest in maximizing the growth rate of the RKO´s microwave signal as a function of the RKO design parameters. This research investigates a class of multi-cavity RKOs with n/spl ges/2 cavities and n-1 drift regions. Cavities may have distinct natural frequencies, qualities, and impedances. Drift regions may have distinct radii, lengths, and loss coefficients, and consequently may have distinct stop currents. A small-signal, modal, steady-state model relates the signal growth rate to the beam parameters (voltage, current, and radius) and the waveguide parameters just mentioned. The model, which assumes weak cavity coupling and a cutoff waveguide, considers the effects of cavity resonances, electromagnetic coupling, and beam coupling. The growth rate is optimized using a parallel real-valued evolutionary algorithm (EA), which performs mutation, recombination, and selection on a population of candidate design parameters.
Keywords :
klystrons; microwave oscillators; optimisation; relativistic electron beam tubes; axially varying geometry; beam coupling; beam parameters; candidate design parameters; cavity resonances; coherent microwave radiation; current; cutoff waveguide; distinct radii; electromagnetic coupling; enhancing mature nonrelativistic klystron technology; high power microwave source; kinetic energy; multicavity relativistic klystron oscillator; natural frequencies; optimization; parallel real-valued evolutionary algorithm; signal growth rate; small-signal modal steady-state model; voltage; waveguide parameters; Electromagnetic coupling; Electromagnetic waveguides; Electrons; Frequency; Kinetic energy; Klystrons; Microwave oscillators; Microwave technology; Optical coupling; Signal design;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 2000. ICOPS 2000. IEEE Conference Record - Abstracts. The 27th IEEE International Conference on
Conference_Location :
New Orleans, LA, USA
ISSN :
0730-9244
Print_ISBN :
0-7803-5982-8
Type :
conf
DOI :
10.1109/PLASMA.2000.855141
Filename :
855141
Link To Document :
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