DocumentCode :
2311084
Title :
Studied of injected particle trajectories in the beat wave accelerator
Author :
Williams, Ross ; Clayton, C.E. ; Joshi, C. ; Leemans, W. ; Marsh, K. ; Katsouleas ; Mori, W.B.
Author_Institution :
Dept. of Phys., California Univ., Los Angeles, CA, USA
fYear :
1989
fDate :
0-0 1989
Firstpage :
57
Abstract :
Summary Form only given, as follows. The trajectories of relativistic electrons ( gamma =4), injected into the potentials of three-dimensional relativistic plasma waves ( gamma /sub ph/=13.5), have been calculated using Monte Carlo simulation techniques in order to predict quantitatively the output of laser plasma beatwave acceleration experiments. The calculations have permitted the analysis of accelerated (and decelerated) electrons according to the quantity of electrons accelerated, the angular distribution, and the energy spectrum. The calculations have also guided the modification of the electron detection system in order to optimize electron transport and maximize detection efficiency. The radial fields (focusing and defocusing) and longitudinal fields (accelerating and decelerating) that result in the number of electrons accelerated being several orders of magnitude lower than the number injected have been analyzed. The angular distribution of accelerated electrons as a function of final electron energy has been predicted, as well as the final energy spectrum and how it depends on the accelerating-field-accelerating-length product. The maximum electron energy gain possible using a CO/sub 2/ laser running on 9.6- and 10.3- mu m wavelengths has been compared with the practical energy limit defined by the experimental limits of the machine.<>
Keywords :
Monte Carlo methods; collective accelerators; particle beam diagnostics; plasma devices; plasma waves; 10.3 micron; 9.6 micron; CO/sub 2/ laser; Monte Carlo simulation techniques; accelerating-field-accelerating-length product; angular distribution; beat wave accelerator; detection efficiency; electron detection system; electron transport; energy spectrum; injected particle trajectories; laser plasma beatwave acceleration experiments; longitudinal fields; radial fields; relativistic electrons; three-dimensional relativistic plasma waves; Induction accelerators; Monte Carlo methods; Particle beam measurements; Plasma devices; Plasma waves;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 1989. IEEE Conference Record - Abstracts., 1989 IEEE International Conference on
Conference_Location :
Buffalo, NY, USA
Type :
conf
DOI :
10.1109/PLASMA.1989.166015
Filename :
166015
Link To Document :
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