DocumentCode
1094448
Title
A Hilbert-Vlasov code for the study of high-frequency plasma beatwave accelerator
Author
Ghizzo, Alain ; Bertrand, Pierre ; Begue, M.L. ; Johnston, T.W. ; Shoucr, Magdi
Author_Institution
Henri Poincare Univ., Vandoeuvre les Nancy, France
Volume
24
Issue
2
fYear
1996
fDate
4/1/1996 12:00:00 AM
Firstpage
370
Lastpage
378
Abstract
High-frequency beatwave simulations relevant to the University of California at Los Angeles (UCLA) experiment with relativistic eulerian hybrid Vlasov code are presented. These Hilbert-Masov simulations revealed a rich variety of phenomena associated with the fast particle dynamics induced by beatwave experiment for a high ratio of driver frequency to plasma frequency ωpump/ωplasma ≈33. The present model allows us to extend detailed modeling to frequency ratios greater than the current practical maximum of 10 or so, for Vlasov or particle-in-cell (PIC) codes, by replacing the Maxwell equations by mode equations for the electromagnetic Vlasov code. Numerical results, including beat frequency chirping (i.e., pump frequency linearly decreasing with time), show that the amplitude limit due to relativistic detuning can be enhanced with accelerated particles up to the ultrarelativistic energies with a high-acceleration gradient of more than 25 GeV/m
Keywords
collective accelerators; numerical analysis; particle beam dynamics; plasma instability; plasma simulation; relativistic plasmas; wakefield accelerators; Hilbert-Vlasov code; Maxwell equations replacement; UCLA experiment; amplitude limit; beat frequency chirping; electromagnetic Vlasov code; fast particle dynamics; frequency ratios; high-acceleration gradient; high-frequency beatwave simulations; high-frequency plasma beatwave accelerator; mode equations; numerical results; particle-in-cell codes; relativistic detuning; relativistic eulerian hybrid Vlasov code; ultrarelativistic energies; Acceleration; Electromagnetic modeling; Electromagnetic scattering; Frequency; Maxwell equations; Plasma accelerators; Plasma density; Plasma simulation; Plasma waves; Pump lasers;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.510001
Filename
510001
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