Title :
Interaction of an intense relativistic electron beam with a plasma-filled waveguide in a magnetic field
Author :
Poole, B.R. ; Chang, Bo-Yan ; Camacho, J. Frank
Author_Institution :
Lawrence Livermore Nat. Lab., CA, USA
Abstract :
Summary Form only given, as follows. Analytic computations and particle-in-cell (PIC) code simulations for the interaction of an intense relativistic electron beam (REB) and a plasma have been carried out. In the simulations, a fast risetime ( approximately 5 ns) 10-kA REB (1 MeV) was injected into a plasma-filled waveguide immersed in an axial magnetic field. Beam transport and microwave generation by beam-plasma instabilities were investigated in both the infinite- and finite-B-field cases. In the finite-B-field case, both the two-stream and cyclotron instabilities were important. Calculations of charge and current neutralization of the REB were performed in the intense beam regime. These calculations provided the appropriate parameters for the linear dispersion relation of the system, which was solved to determine the nature of the instabilities. For large magnetic fields the linearly unstable waves on the lower branch of the dispersion curve can backscatter off the accumulation of plasma electrons at the beam front produced in the charge neutralization process. These backscattered waves can then mix with the original unstable wave in a three-wave process to produce a wave on the upper branch of the dispersion curve at a higher-frequency. Still higher frequencies can be produced by a cascading of wave-mixing processes.<>
Keywords :
microwave generation; plasma diagnostics; plasma filled waveguides; plasma instability; plasma simulation; plasma transport processes; plasma waves; plasma-beam interactions; relativistic electron beam tubes; 1 MeV; 10 kA; 5 ns; analytic computations; backscattered waves; beam transport; beam-plasma instabilities; charge neutralization; current neutralization; cyclotron instabilities; dispersion curve; finite-B-field; infinite-B-field; intense relativistic electron beam; linear dispersion relation; linearly unstable waves; magnetic field; microwave generation; particle-in-cell code simulations; plasma-filled waveguide; risetime; three-wave process; two-stream instabilities; wave-mixing processes; Charge carrier processes; Microwave generation; Particle collisions; Plasma loaded waveguides; Plasma measurements; Plasma properties; Plasma stability; Plasma waves; Plasmas; Relativistic effects; Simulation;
Conference_Titel :
Plasma Science, 1989. IEEE Conference Record - Abstracts., 1989 IEEE International Conference on
Conference_Location :
Buffalo, NY, USA
DOI :
10.1109/PLASMA.1989.166236