Title :
Operating modes of relativistic rising-sun and A6 magnetrons
Author :
Treado, Todd A. ; Doggett, Wesley O. ; Thomas, Gary E. ; Smith, Richard S., III ; Jackson-Ford, Jeanne ; Jenkins, David J.
Author_Institution :
Dept. of Phys., North Carolina State Univ., Raleigh, NC, USA
fDate :
4/1/1988 12:00:00 AM
Abstract :
The operating characteristics of a relativistic 16-vane rising-sun magnetron were investigated with particular emphasis on determining the operating regimes of different modes. The magnetron performance was studied as a function of voltage, magnetic field, cathode geometry, axial boundary conditions, and output coupling. Operation was observed in the 3π/8 mode at 3.3 GHz, in the π/2 or 3π/8 mode at 3.5 GHz, and in the π or 7π/8 mode at 4.6 GHz. A maximum power of 80 MW was emitted in the 3π/8 mode with an efficiency of 4.5%. Typical pulse lengths were 40-50 ns. Cold tests were performed to measure the resonant frequencies and azimuthal electric fields in the interaction space which agreed within 1-4% of theoretical calculations. The operating modes were inferred from close agreement between hot-test frequencies and cold-test results and because high-power RF emission occurred at, or just above, the Buneman-Hartree threshold calculated for these modes. The characteristics of a six-vane A6-magnetron operating in the π and 2π modes were also studied. A unique transmitting-receiving system, which was used as a microwave diagnostic, is described
Keywords :
magnetrons; relativistic electron beam tubes; 3.3 GHz; 3.5 GHz; 4.5 percent; 4.6 GHz; 40 to 50 ns; 80 MW; A6 magnetrons; Buneman-Hartree threshold; axial boundary conditions; azimuthal electric fields; cathode geometry; cold-test; high-power RF emission; hot-test frequencies; magnetic field; microwave diagnostic; modes; operating regimes; output coupling; pulse lengths; relativistic 16-vane rising-sun magnetron; resonant frequencies; transmitting-receiving system; Boundary conditions; Cathodes; Couplings; Frequency measurement; Geometry; Magnetic fields; Magnetrons; Performance evaluation; Testing; Voltage;
Journal_Title :
Plasma Science, IEEE Transactions on