Title :
Beam loading in magnicon deflection cavities
Author :
Hafizi, B. ; Gold, Steven H.
Author_Institution :
ICARUS Res. Inc., Bethesda, MD, USA
fDate :
2/1/1997 12:00:00 AM
Abstract :
Analysis of the beam-deflection cavity interaction in a magnicon is presented and compared with experiment. For a driven cavity a dispersion relation is obtained wherein the interaction modifies the cold-cavity quality factor and the resonance frequency. In terms of a lumped-parameter equivalent circuit the interaction corresponds to a complex-valued beam admittance Yb in parallel with the cavity admittance. The response of the gain cavities is modified by the same admittance. In a magnicon, Yb is a sensitive function of the solenoidal focusing magnetic field B0, thus providing a convenient means of adjusting the cavity properties in experiments. When the relativistic gyrofrequency is twice the drive frequency, Im Yb =0 and the beam does not load the cavity. Analytical expressions of the variation of the detuning, instantaneous bandwidth (i.e., loaded quality factor) and gain with B0 are derived. Simulation results are presented to verify the linear analysis with ideal beams and to illustrate the modifications due to finite beam emittance. Results of the magnicon experiment at the Naval Research Laboratory are examined in the light of the analysis
Keywords :
Q-factor; cavity resonators; electron guns; microwave amplifiers; microwave generation; microwave tubes; relativistic electron beam tubes; Naval Research Laboratory; beam loading; beam-deflection cavity interaction; cavity admittance; cavity properties; cold-cavity quality factor; complex-valued beam admittance; detuning; dispersion relation; drive frequency; driven cavity; finite beam admittance; gain; gain cavities; ideal beams; instantaneous bandwidth; linear analysis; loaded quality factor; lumped-parameter equivalent circuit; magnicon; magnicon deflection cavities; relativistic gyrofrequency; resonance frequency; sensitive function; solenoidal focusing magnetic field; Admittance; Bandwidth; Dispersion; Equivalent circuits; Magnetic analysis; Magnetic fields; Magnetic properties; Q factor; Resonance; Resonant frequency;
Journal_Title :
Plasma Science, IEEE Transactions on