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Tuned Decoherence Damping Applied to the CLIC Drive Linac

Numerical simulations of beam transport in the CLIC drive linac, have always included decoherence of betatron phase between and within bunches. This played an essential part in avoiding multi-bunch beam breakup, BBU, due to the weak, but non-negligible, resistive-wall and synchronous transverse wake...

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Autor principal: Johnson, C D
Lenguaje:eng
Publicado: 1997
Materias:
Acceso en línea:http://cds.cern.ch/record/326866
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author Johnson, C D
author_facet Johnson, C D
author_sort Johnson, C D
collection CERN
description Numerical simulations of beam transport in the CLIC drive linac, have always included decoherence of betatron phase between and within bunches. This played an essential part in avoiding multi-bunch beam breakup, BBU, due to the weak, but non-negligible, resistive-wall and synchronous transverse wakes. In early studies, the initial energy variation along each bunch train, which was a part of the design, provided adequate decoherence. For the more recent isochronous ring source of the drive beam train, with no bunch-to-bunch energy variation, passive damping of transverse wakes within the transfer structures and betatron phase decoherence along the linac must be added to ensure beam stability. The latter can be achieved by varying the energy of alternate bunches, by an amount that depends on the lattice, and is an effective way of delaying the onset of BBU.
id cern-326866
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1997
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spelling cern-3268662023-07-20T15:05:08Zhttp://cds.cern.ch/record/326866engJohnson, C DTuned Decoherence Damping Applied to the CLIC Drive LinacAccelerators and Storage RingsNumerical simulations of beam transport in the CLIC drive linac, have always included decoherence of betatron phase between and within bunches. This played an essential part in avoiding multi-bunch beam breakup, BBU, due to the weak, but non-negligible, resistive-wall and synchronous transverse wakes. In early studies, the initial energy variation along each bunch train, which was a part of the design, provided adequate decoherence. For the more recent isochronous ring source of the drive beam train, with no bunch-to-bunch energy variation, passive damping of transverse wakes within the transfer structures and betatron phase decoherence along the linac must be added to ensure beam stability. The latter can be achieved by varying the energy of alternate bunches, by an amount that depends on the lattice, and is an effective way of delaying the onset of BBU.CERN-OPEN-97-017CLIC-Note-329oai:cds.cern.ch:3268661997-05-21
spellingShingle Accelerators and Storage Rings
Johnson, C D
Tuned Decoherence Damping Applied to the CLIC Drive Linac
title Tuned Decoherence Damping Applied to the CLIC Drive Linac
title_full Tuned Decoherence Damping Applied to the CLIC Drive Linac
title_fullStr Tuned Decoherence Damping Applied to the CLIC Drive Linac
title_full_unstemmed Tuned Decoherence Damping Applied to the CLIC Drive Linac
title_short Tuned Decoherence Damping Applied to the CLIC Drive Linac
title_sort tuned decoherence damping applied to the clic drive linac
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/326866
work_keys_str_mv AT johnsoncd tuneddecoherencedampingappliedtotheclicdrivelinac