Title :
Highly Efficient Quasi-Optical Mode Converter for a Multifrequency High-Power Gyrotron
Author :
Prinz, Oliver ; Arnold, Andreas ; Gantenbein, Gerd ; Liu, Ying-hui ; Thumm, Manfred ; Wagner, Dietmar
Author_Institution :
Inst. fur Hochstfrequenztechnik und Elektron., Univ. Karlsruhe, Karlsruhe
fDate :
5/1/2009 12:00:00 AM
Abstract :
A highly efficient quasi-optical mode converter with a bandwidth of 38 GHz has been designed and tested. The mode converter combines low-diffraction losses and a Gaussian mode content up to 97% for a set of nine modes in the range of 105 to 143 GHz for a 1-MW CW gyrotron. This was achieved using a dimpled-wall waveguide antenna (launcher), one quasi-elliptical mirror, and two toroidal mirrors. The optimization of the launcher was done using coupled-mode theory. The simulation results show a well-focused Gaussian beam for all nine operating modes. The curvature radii of the toroidal mirrors were determined by Gaussian mode transformation (ABCD-law) and subsequently optimized for a multimode operation. The simulations of the quasi-optical mode converter are based on the electric field integral equation and, thus, are 3-D. Experimental low-power measurements show close agreement with predictions.
Keywords :
circuit optimisation; convertors; electromagnetic launchers; gyrotrons; mirrors; multifrequency antennas; waveguide antennas; Gaussian mode; Gaussian mode transformation; bandwidth 38 GHz; coupled-mode theory; dimpled-wall waveguide antenna; electric field integral equation; frequency 105 GHz to 143 GHz; launcher; low-diffraction losses; low-power measurements; multifrequency high-power gyrotron; optimization; power 1 MW; quasielliptical mirror; quasioptical mode converter; toroidal mirrors; Electromagnetic wave absorption; Electromagnetic waveguides; Electrons; Frequency; Gyrotrons; Integral equations; Magnetic confinement; Magnetic field measurement; Mirrors; Optical waveguides; Plasma confinement; Gaussian beam; gyrotron; high-power microwave; quasi-optical mode converter; tuning;
Journal_Title :
Electron Devices, IEEE Transactions on
DOI :
10.1109/TED.2009.2015819