DocumentCode :
1411905
Title :
A new approach for a multistage depressed collector for gyrotrons
Author :
Ling, Genshen ; Piosczyk, Bernhard ; Thumm, Manfred K.
Author_Institution :
Inst. fur Hochleistungsimpulsund Mikrowellentechnik, Forschungszentrum Karlsruhe (FZK), Germany
Volume :
28
Issue :
3
fYear :
2000
fDate :
6/1/2000 12:00:00 AM
Firstpage :
606
Lastpage :
613
Abstract :
A feasibility study for a two-stage depressed gyrotron collector has been performed. A new approach for an adiabatic magnetic decompression of the hollow electron beam has been used. It permits control of the radius of the constant magnetic flux surface, which determines the radial extension of the electron beam. Independent of the value of the magnetic field around the beam. For this purpose, either solenoidal coils or a ferromagnetic insert can be placed inside the hollow electron beam. Thus, the radial dimensions of a multistage depressed collector of a high-power high-frequency gyrotron can be kept within limits given by technological constraints. The energy sorting of the electron beam is improved by using electrodes inside the hollow electron beam for controlling the potential distribution. The additional control electrodes make it possible to eliminate almost all of the effect of secondary electrons on the operation of the collector. In order to demonstrate the proposed approach, a compact two-stage depressed collector has been designed for a 1.5-MW coaxial cavity gyrotron operating at 165 GHz in the transverse electric (TE)31,17 mode, which is under development at FZK, Karlsruhe, Germany. Including the effect due to secondary electrons, a collector efficiency of 73% has been calculated with an average and peak heat dissipation density of about 240 W/cm2 and 500 W/cm2, respectively. This results in an increase of the output gyrotron efficiency from 36.5% to 62.6% when internal radio frequency (RF)-losses inside the gyrotron tube of 15% are taken into account
Keywords :
cavity resonators; cooling; electron beams; gyrotrons; losses; magnetic flux; millimetre wave generation; millimetre wave tubes; 1.5 MW; 165 GHz; 36.5 to 62.6 percent; 73 percent; FZK; Germany; Karlsruhe; adiabatic magnetic decompression; average heat dissipation density; coaxial cavity gyrotron; collector efficiency; compact two-stage depressed collector; constant magnetic flux surface; control electrodes; electron beam; energy sorting; feasibility study; ferromagnetic insert; gyrotrons; high-power high-frequency gyrotron; hollow electron beam; internal radio frequency losses; magnetic field; multistage depressed collector; output gyrotron efficiency; peak heat dissipation density; potential distribution; radial dimensions; secondary electrons; solenoidal coils; technological constraints; transverse electric (TE)31,17 mode; two-stage depressed gyrotron collector; Coaxial components; Coils; Electrodes; Electron beams; Gyrotrons; Magnetic fields; Magnetic flux; Radio frequency; Sorting; Tellurium;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/27.887683
Filename :
887683
Link To Document :
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