Title :
Optimal wakefield excitation and particle acceleration in a relativistic counterstreaming electron beam
Author_Institution :
Los Alamos Nat. Lab., NM, USA
Abstract :
The wake excitation of nonlinear plasma waves in a relativistic counterstreaming electron beam and the consequences for charged particle acceleration are discussed. The basic idea is to use an optimally shaped high-energy electron bunch as a driving source to generate a large-amplitude, high-phase-velocity nonlinear plasma wave in a high-density relativistic counterstreaming electron beam. A trailing charged particle bunch can then be loaded onto the wave and accelerated to a high energy. Discussions of staged acceleration are also included. It is found that the relativistic effects resulting from the relativistic streaming of the counterstreaming electron beam can provide Lorentz effects to reduce the two-stream instability for obtaining a higher transformer ratio, to achieve a longer plasma wavelength for easier beam loading, and to ease the technical difficulty connected with generating a well-shaped driving electron bunch
Keywords :
beam handling equipment; plasma waves; Lorentz effects; beam loading; driving source; high-density relativistic counterstreaming electron beam; high-phase-velocity nonlinear plasma wave; nonlinear plasma waves; optimal wakefield excitation; optimally shaped high-energy electron bunch; particle acceleration; plasma wavelength; relativistic counterstreaming electron beam; staged acceleration; trailing charged particle bunch; transformer ratio; two-stream instability; Acceleration; Electron accelerators; Electron beams; Electrostatics; Frequency; Linear particle accelerator; Particle accelerators; Plasma accelerators; Plasma sources; Plasma waves;
Conference_Titel :
Particle Accelerator Conference, 1989. Accelerator Science and Technology., Proceedings of the 1989 IEEE
Conference_Location :
Chicago, IL
DOI :
10.1109/PAC.1989.73224