Title :
Plasma-filled radial acceletron
Author :
Arman, M. Joseph
Author_Institution :
High Power Microwave Div., Air Force Res. Lab., Kirtland, NM, USA
fDate :
6/1/2000 12:00:00 AM
Abstract :
Recent experimental studies have shown that the presence of plasma in the high-power microwave sources using intense charged beams, when properly introduced, may enhance the efficiency of the source. These findings have been confirmed by numerical simulations for some high-power microwave sources. The enhancement has been partly attributed to the neutralizing effect of the positively charged plasma on lowering the disruptive space charge effects of the electron beam used to generate the RF, and partly to a modification of the dispersion relation leading to higher group velocities for the traveling radio frequency (RF) waves. Mode selection may also be favorably affected by the presence of plasma in the source. We present the results of numerical simulations carried out to study the effect of plasma on an acceletron device. Both neutral as well as positively charged plasmas have been explored. The acceletron device is run in transverse magnetic TM001 mode and generates a 3.2-GHz steady oscillation without any competing modes. The effect of the plasma at several different densities has been explored. Our results indicate a significant enhancement of the acceletron operation due to the plasma. Other plasma densities are being studied. The PIC code used in our simulations was the MRC 2 1/2-dimensional code MAGIC.
Keywords :
beam handling equipment; electron beams; microwave generation; microwave oscillators; microwave tubes; plasma density; plasma devices; plasma simulation; relativistic electron beam tubes; space charge; 3.2 GHz; MAGIC code; MRC 2 1/2-dimensional code; PIC code; acceletron device; acceletron operation; densities; dispersion relation; disruptive space charge effects; efficiency; electron beam; group velocities; high-power microwave sources; intense charged beams; mode selection; neutral plasmas; neutralizing effect; numerical simulations; plasma; plasma densities; plasma-filled radial acceletron; positively charged plasma; positively charged plasmas; simulations; steady oscillation; transverse magnetic TM001 mode; traveling radio frequency waves; Electron beams; Numerical simulation; Particle beams; Plasma density; Plasma devices; Plasma simulation; Plasma sources; Plasma waves; Radio frequency; Space charge;
Journal_Title :
Plasma Science, IEEE Transactions on