Title :
Excitation of microwave by a thin annular relativistic electron beam in a plasma-filled dielectric-loaded coaxial cylindrical waveguide
Author_Institution :
Sch. of Phys. Electron., Univ. of Electron. Sci. & Technol. of China, Sichuan, China
fDate :
6/1/2004 12:00:00 AM
Abstract :
A new type of slow-wave structure, i.e., plasma-filled dielectric-loaded coaxial cylindrical waveguide with a dielectric ring tightly enclosing the inner conductor, is developed. The collision between electrons and ions in the background plasma is taken into account. The microwave generation based on the Cherenkov effect excited by a thin annular relativistic electron beam in the new slow-wave structure is examined by use of the self-consistent linear field theory, considering the effect from this kind of collision via the collision frequency ne,i term. The dispersion equation of the beam-wave interaction with a complex value of angular frequency is derived. The effects of the plasma angular frequency and collision frequency on the dispersion characteristics, i.e., the output frequency and the wave growth rate of the microwave radiation, are calculated and discussed. It is clearly shown that the microwave radiation excited by the beam-wave interaction results from the coupling between the slow TM modes propagated along the slow-wave structure and the negative-energy space-charge wave propagated along the relativistic electron beam.
Keywords :
Cherenkov radiation; circular waveguides; coaxial waveguides; dielectric-loaded waveguides; dispersion relations; microwave generation; plasma collision processes; plasma filled waveguides; relativistic electron beams; slow wave structures; space charge waves; Cherenkov effect; angular frequency complex value; background plasma; beam-wave interaction; collision frequency; dielectric ring; dispersion equation; electron-ion collision; microwave excitation; microwave generation; microwave radiation; plasma angular frequency; plasma-filled dielectric loaded coaxial cylindrical waveguide; self-consistent linear field theory; slow-wave structure; space-charge wave; thin annular relativistic electron beam; wave growth rate; Coaxial components; Conductors; Dielectrics; Electron beams; Equations; Frequency; Microwave generation; Microwave propagation; Plasma properties; Plasma waves; Complex dispersion equation; microwave generation; particle collisions; plasma loaded waveguides; thin annular electron beam;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2004.828795