Calculation of Radiation from a Helically Cut Waveguide for a Gyrotron Mode Converter in the Quasi-Optical Approximation

E. M. Choi1, M. A. Shapiro1, J. R. Sirigiri1, R. J. Temkin1
1Plasma Science & Fusion Center, Massachusetts Institute of Technology, Cambridge, USA

Tóm tắt

We present results of calculations of the radiation from a helically cut waveguide launcher, a so-called Vlasov launcher, which is commonly used either internal or external to a gyrotron for purposes of mode conversion. A gyrotron internal mode converter consists of such a launcher that radiates the waveguide mode as a nearly Gaussian beam in free space followed by a set of mirrors to focus and direct the radiation. The radiation from the launcher is first calculated using a geometric optics representation of the waveguide mode. Then the radiation is calculated in the quasi-optical limit, including diffraction. These analytic results are compared to a rigorous calculation using the computer code SURF3D, which uses an electric field integral equation (EFIE) approach. Good agreement is obtained between the quasi-optical theory and the SURF3D calculation. The present results provide new insights into the accuracy of the quasi-optical theory and may be useful for the design and improvement of Vlasov-type mode converters.

Tài liệu tham khảo

G. S. Nusinovich, Introduction to the Physics of Gyrotrons (The Johns Hopkins University Press, Baltimore, 2004). M. V. Kartikeyan, E. Borie, and M. K. A. Thumm, Gyrotrons: High Power Microwave and Millimeter Wave Technology (Springer, Berlin Heidelberg New York, 2004). S. N. Vlasov, L. I. Zagryadskaya, and M. I. Petelin, “Transformation of a whispering gallery mode propagating in a circular waveguide into a beam of waves,” Radio Eng. Electron. Phys. 20, 14–17 (1975). M. K. Hornstein, V. S. Bajaj, R. G. Griffin, K. E. Kreischer, I. Mastovsky, M. A. Shapiro, J. R. Sirigiri, and R. J. Temkin, “Second harmonic operation at 460 GHz and broadband continuous frequency tuning of a gyrotron oscillator,” IEEE Trans. Electron Devices 52, 798–807 (2005). T. Idehara, I. Ogawa, S. Mitsudo, M. Pereyaslavets, N. Nishida, and K. Yoshida, “ Development of frequency tunable medium power gyrotrons (gyrotron FU series) as submillimeter wave radiation sources,” IEEE Trans. Plasma Sci. 27, 340–354 (1999). I. Ogawa, T. Idehara, M. L. Pereyaslavets, and W. Kasparek, “Design of quasi-optical systems converting a gyrotron output into a Gaussian-like beam,” Int. J. Electron. 87, 865–877 (2000). J. A. Lorbeck, and R. J. Vernon, “Singly curved dual-reflector synthesis technique applied to a quasi-optical antenna for a gyrotron with a whispering-gallery mode output,” IEEE Trans. Antennas Propag. 39, 1733–1741 (1991). S. N. Vlasov, and M. A. Shapiro, “Bievolvent mirror for transfer of caustic surfaces,” Sov. Tech. Phys. Lett. 15, 374 (1989). S. N. Vlasov, M. A. Shapiro, and E. V. Sheinina, “Wave beam shaping on diffraction of a whispering gallery wave at a convex cylindrical surface,” Radio Phys. Quant. Electron. 31, 1070 (1988). S. N. Vlasov, M. A. Shapiro, and K. M. Likin, “Geometrical optics of waveguide mode converters,” Optics Commun. 88, 455 (1992). G. G. Denisov, A. N. Kuftin, V. I. Malygin, N. P. Venediktov, D. V. Vinogradov, and V. E. Zapevalov, “110 GHz gyrotron with built-in high efficiency converter,” Int. J. Electron. 72, 1079 (1992). M. Iima, M. Sato, Y. Amano, S. Kobayashi, M. Nakajima, M. Hashimoto, O. Wada, K. Sakamoto, M. Shiho, T. Nagashima, M. Thumm, A. Jacobs, and W. Kasparek, “Measurement of radiation field from an improved efficiency quasi-optical converter for whispering-gallery mode,” in Conf. Digest, 14th Int. Conf. on Infrared and Millim. Waves, Wurzburg, Proc. SPIE 1240, p. 405 (1989). M. K. Thumm, and W. Kasparek, “Passive high-power microwave components,” IEEE Trans. Plasma Sci. 30, 755–786 (2002). J. M. Neilson, and R. Bunger, “Surface integral equation analysis of quasi-optical launcher,” IEEE Trans. Plasma Sci. 30, 794 (2002). H. Shirai, and L. B. Felsen, “Rays and modes for plane wave coupling into a large open-ended circular waveguide,” Wave Motion 9, 461–482 (1987). V. M. Babich, and V. S. Buldyrev, Short-wavelength Diffraction Theory: Asymptotic Methods (Springer-Verlag, Berlin Heidelberg New York, 1991). K. Goto, T. Ishihara, and L. B. Felsen, “High-frequency whispering-gallery mode to beam conversions on a perfectly conducting concave-convex boundary,” IEEE Trans. Antennas Propag. 50, 1109–1119 (2002). V. A. Fock, Electromagnetic Diffraction and Propagation Problems (Pergamon Press, Oxford New York, 1965). G. D. Malyuzhinets, and L. A. Vainshtein, “Transverse diffusion for diffraction at an impedance cylinder of large radius. I. Parabolic equation in ray coordinates,” Radiotekh. Elektron. 6, 1247–1258 (1961). S. Solimeno, B. Crosignani, and P. DiPorto, Guiding, Diffraction, and Confinement of Optical Radiation (Academic Press, Orlando, 1986).