Title :
Improved Efficiency of Backward-Wave Oscillator With an Inclined Electron Beam
Author :
Sattorov, Matlabjon ; Khutoryan, Eduard ; Lukin, Konstantin ; Kwon, Ohjoon ; Park, Gun-Sik
Author_Institution :
Dept. of Phys. & Astron., Seoul Nat. Univ., Seoul, South Korea
Abstract :
The possibility of the efficient operation of a backward-wave oscillator (BWO) with an electron beam inclined with respect to the surface of a periodic structure-a clinotron-is analyzed here. The beam inclination provides the possibility of effective interaction by all particles of a thick electron beam with the slow evanescent harmonic of the cavity modes. The problem of electron-beam-wave interaction is treated in a self-consistent formulation. A theoretical analysis shows that the inclination of the electron beam to the grating surface decreases the demand of the clinotron for magnetic field magnitude and beam velocity spread compared to a conventional BWO. It is demonstrated that, for an optimal inclination angle and an optimal beam thickness, the clinotron efficiency exceeds the efficiency of a conventional BWO considerably given the same electron beam parameters. The developed multimode theory results are in satisfactory agreement with the theory of a BWO in terms of reflections and particle-in-cell simulations.
Keywords :
backward wave oscillators; electron beams; magnetic fields; backward wave oscillator; beam velocity spread; cavity modes; clinotron efficiency; electron beam inclination; electron beam wave interaction; grating surface; inclination angle; magnetic field magnitude; multimode theory; optimal beam thickness; particle-in-cell simulations; periodic structure; slow evanescent harmonic; Cavity resonators; Current density; Electron beams; Gratings; Magnetic resonance; Oscillators; Radio frequency; Backward-wave oscillator (BWO); beam–wave interaction; clinotron; inclined electron beam; interaction efficiency; velocity spread;
Journal_Title :
Electron Devices, IEEE Transactions on
DOI :
10.1109/TED.2012.2225837