Longitudinal and transverse dynamics of ions from residual gas in an electron accelerator

The ion cloud produced from residual gas in an electron accelerator can degrade machine performances and produce instabilities. The ion dynamics in an accelerator is governed by the beam-ion interaction, magnetic fields and eventual mitigation strategies. Due to the fact that the beam has a nonunifo...

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Main Authors: A. Gamelin, C. Bruni, D. Radevych
Format: Article
Language:English
Published: American Physical Society 2018-05-01
Series:Physical Review Accelerators and Beams
Online Access:http://doi.org/10.1103/PhysRevAccelBeams.21.054401
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spelling doaj-68f358203e694b60b3ea6017c98e56a32020-11-24T22:54:15ZengAmerican Physical SocietyPhysical Review Accelerators and Beams2469-98882018-05-0121505440110.1103/PhysRevAccelBeams.21.054401Longitudinal and transverse dynamics of ions from residual gas in an electron acceleratorA. GamelinC. BruniD. RadevychThe ion cloud produced from residual gas in an electron accelerator can degrade machine performances and produce instabilities. The ion dynamics in an accelerator is governed by the beam-ion interaction, magnetic fields and eventual mitigation strategies. Due to the fact that the beam has a nonuniform transverse size along its orbit, the ions move longitudinally and accumulate naturally at some points in the accelerator. In order to design effective mitigation strategies it is necessary to understand the ion dynamics not only in the transverse plane but also in the longitudinal direction. After introducing the physics behind the beam-ion interaction, we show how to get accumulation points for a realistic electron storage ring lattice. Simulations of the ion cloud dynamics, including the effect of magnetic fields on the ions, clearing electrodes and clearing gaps are shown. Longitudinal ion trapping due to the magnetic mirror effect in the dipole fringe fields is also detailed. Finally, the effectiveness of clearing electrode using longitudinal clearing fields is discussed and compared to clearing electrodes producing transverse field only.http://doi.org/10.1103/PhysRevAccelBeams.21.054401
collection DOAJ
language English
format Article
sources DOAJ
author A. Gamelin
C. Bruni
D. Radevych
spellingShingle A. Gamelin
C. Bruni
D. Radevych
Longitudinal and transverse dynamics of ions from residual gas in an electron accelerator
Physical Review Accelerators and Beams
author_facet A. Gamelin
C. Bruni
D. Radevych
author_sort A. Gamelin
title Longitudinal and transverse dynamics of ions from residual gas in an electron accelerator
title_short Longitudinal and transverse dynamics of ions from residual gas in an electron accelerator
title_full Longitudinal and transverse dynamics of ions from residual gas in an electron accelerator
title_fullStr Longitudinal and transverse dynamics of ions from residual gas in an electron accelerator
title_full_unstemmed Longitudinal and transverse dynamics of ions from residual gas in an electron accelerator
title_sort longitudinal and transverse dynamics of ions from residual gas in an electron accelerator
publisher American Physical Society
series Physical Review Accelerators and Beams
issn 2469-9888
publishDate 2018-05-01
description The ion cloud produced from residual gas in an electron accelerator can degrade machine performances and produce instabilities. The ion dynamics in an accelerator is governed by the beam-ion interaction, magnetic fields and eventual mitigation strategies. Due to the fact that the beam has a nonuniform transverse size along its orbit, the ions move longitudinally and accumulate naturally at some points in the accelerator. In order to design effective mitigation strategies it is necessary to understand the ion dynamics not only in the transverse plane but also in the longitudinal direction. After introducing the physics behind the beam-ion interaction, we show how to get accumulation points for a realistic electron storage ring lattice. Simulations of the ion cloud dynamics, including the effect of magnetic fields on the ions, clearing electrodes and clearing gaps are shown. Longitudinal ion trapping due to the magnetic mirror effect in the dipole fringe fields is also detailed. Finally, the effectiveness of clearing electrode using longitudinal clearing fields is discussed and compared to clearing electrodes producing transverse field only.
url http://doi.org/10.1103/PhysRevAccelBeams.21.054401
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AT cbruni longitudinalandtransversedynamicsofionsfromresidualgasinanelectronaccelerator
AT dradevych longitudinalandtransversedynamicsofionsfromresidualgasinanelectronaccelerator
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