DocumentCode :
377556
Title :
Nonlinear charge and current neutralization for an ion beam pulse propagating through a background plasma
Author :
Kaganovich, Igor D. ; Shvets, Gennady ; Startsev, Edward ; Davidson, Ronald C.
Author_Institution :
Plasma Phys. Lab., Princeton Univ., NJ, USA
Volume :
3
fYear :
2001
fDate :
2001
Firstpage :
2072
Abstract :
This paper demonstrates the possibility of quasi-steady-state transport of a finite-length ion beam through a chamber filled with plasma of arbitrary density. We conclude that, in principle, partially-current-neutralized equilibria exist in the reference frame moving with the ion charge bunch for arbitrary ratio of beam density to plasma density. The electric and magnetic fields generated by the ion beam are studied analytically for the nonlinear case where the plasma density is comparable in size with the beam density. Particle-in-cell simulations of current and charge neutralization agree well with analytical results. An important conclusion is that for long, nonrelativistic ion beams, with length much longer than the beam radius and the plasma neutralization length, which is the ratio of the beam velocity to the electron plasma frequency, the charge neutralization is, for all practical purposes, complete even for very tenuous background plasmas. Current neutralization is usually much weaker than charge neutralization. As a result, the magnetic pinching force dominates the electric defocusing force, and the beam ions are always pinched during quasi-steady-state beam propagation through the background plasma
Keywords :
accelerator RF systems; collective accelerators; high energy physics instrumentation computing; ion accelerators; ion beams; particle beam bunching; particle beam dynamics; particle beam fusion accelerators; plasma density; plasma diagnostics; PIC; background plasma propagation; beam density; beam radius; beam velocity; current neutralization; electric defocusing force; electron plasma frequency; finite-length ion beam; ion beam pulse; ion charge bunch; magnetic pinching force; nonlinear charge; particle-in-cell simulations; plasma density; plasma-filled chamber; quasisteady-state transport; Analytical models; Electron beams; Frequency; Ion beams; Magnetic analysis; Magnetic fields; Particle beams; Plasma density; Plasma simulation; Plasma transport processes;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Particle Accelerator Conference, 2001. PAC 2001. Proceedings of the 2001
Conference_Location :
Chicago, IL
Print_ISBN :
0-7803-7191-7
Type :
conf
DOI :
10.1109/PAC.2001.987280
Filename :
987280
Link To Document :
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