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Nonlinear delta f Simulations of Collective Effects in Intense Charged Particle Beams
A nonlinear delta(f) particle simulation method based on the Vlasov-Maxwell equations has been recently developed to study collective processes in high-intensity beams, where space-charge and magnetic self-field effects play a critical role in determining the nonlinear beam dynamics. Implemented in...
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Lenguaje: | eng |
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2003
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Acceso en línea: | http://cds.cern.ch/record/747732 |
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author | Hong Qi |
author_facet | Hong Qi |
author_sort | Hong Qi |
collection | CERN |
description | A nonlinear delta(f) particle simulation method based on the Vlasov-Maxwell equations has been recently developed to study collective processes in high-intensity beams, where space-charge and magnetic self-field effects play a critical role in determining the nonlinear beam dynamics. Implemented in the Beam Equilibrium, Stability and Transport (BEST) code [H. Qin, R.C. Davidson, and W.W. Lee, Physical Review -- Special Topics on Accelerator and Beams 3 (2000) 084401; 3 (2000) 109901.], the nonlinear delta(f) method provides a low-noise and self-consistent tool for simulating collective interactions and nonlinear dynamics of high-intensity beams in modern and next-generation accelerators and storage rings, such as the Spallation Neutron Source and heavy ion fusion drivers. A wide range of linear eigenmodes of high-intensity charged-particle beams can be systematically studied using the BEST code. Simulation results for the electron-proton two-stream instability in the Proton Storage Ring experiment [R. Macek, et al., in Proc. of the Particle Accelerator Conference, Chicago, 2001 (IEEE, Piscataway, NJ, 2001), Vol. 1, p. 688.] at the Los Alamos National Laboratory agree well with experimental observations. Large-scale parallel simulations have also been carried out for the ion-electron two-stream instability in the very-high-intensity heavy ion beams envisioned for heavy ion fusion applications. In both cases, the simulation results indicate that the dominant two-stream instability has a dipole-mode (hose-like) structure and can be stabilized by a modest axial momentum spread of the beam particles. |
id | cern-747732 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2003 |
record_format | invenio |
spelling | cern-7477322019-09-30T06:29:59Zhttp://cds.cern.ch/record/747732engHong QiNonlinear delta f Simulations of Collective Effects in Intense Charged Particle BeamsAccelerators and Storage RingsA nonlinear delta(f) particle simulation method based on the Vlasov-Maxwell equations has been recently developed to study collective processes in high-intensity beams, where space-charge and magnetic self-field effects play a critical role in determining the nonlinear beam dynamics. Implemented in the Beam Equilibrium, Stability and Transport (BEST) code [H. Qin, R.C. Davidson, and W.W. Lee, Physical Review -- Special Topics on Accelerator and Beams 3 (2000) 084401; 3 (2000) 109901.], the nonlinear delta(f) method provides a low-noise and self-consistent tool for simulating collective interactions and nonlinear dynamics of high-intensity beams in modern and next-generation accelerators and storage rings, such as the Spallation Neutron Source and heavy ion fusion drivers. A wide range of linear eigenmodes of high-intensity charged-particle beams can be systematically studied using the BEST code. Simulation results for the electron-proton two-stream instability in the Proton Storage Ring experiment [R. Macek, et al., in Proc. of the Particle Accelerator Conference, Chicago, 2001 (IEEE, Piscataway, NJ, 2001), Vol. 1, p. 688.] at the Los Alamos National Laboratory agree well with experimental observations. Large-scale parallel simulations have also been carried out for the ion-electron two-stream instability in the very-high-intensity heavy ion beams envisioned for heavy ion fusion applications. In both cases, the simulation results indicate that the dominant two-stream instability has a dipole-mode (hose-like) structure and can be stabilized by a modest axial momentum spread of the beam particles.oai:cds.cern.ch:7477322003-01-21 |
spellingShingle | Accelerators and Storage Rings Hong Qi Nonlinear delta f Simulations of Collective Effects in Intense Charged Particle Beams |
title | Nonlinear delta f Simulations of Collective Effects in Intense Charged Particle Beams |
title_full | Nonlinear delta f Simulations of Collective Effects in Intense Charged Particle Beams |
title_fullStr | Nonlinear delta f Simulations of Collective Effects in Intense Charged Particle Beams |
title_full_unstemmed | Nonlinear delta f Simulations of Collective Effects in Intense Charged Particle Beams |
title_short | Nonlinear delta f Simulations of Collective Effects in Intense Charged Particle Beams |
title_sort | nonlinear delta f simulations of collective effects in intense charged particle beams |
topic | Accelerators and Storage Rings |
url | http://cds.cern.ch/record/747732 |
work_keys_str_mv | AT hongqi nonlineardeltafsimulationsofcollectiveeffectsinintensechargedparticlebeams |