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A New Damped and Tapered Accelerating Structure for CLIC

The main performance limits when designing accelerating structures for the Compact Linear Collider (CLIC) for an average accelerating gradient above 100 MV/m are electrical breakdown and material fatigue caused by pulsed surface heating. In addition, for stable beam operation, the structures should...

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Detalles Bibliográficos
Autores principales: Raguin, J Y, Schulte, Daniel, Syratchev, I V, Wilson, Ian H, Wuensch, Walter
Lenguaje:eng
Publicado: 2002
Materias:
Acceso en línea:http://cds.cern.ch/record/580384
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author Raguin, J Y
Schulte, Daniel
Syratchev, I V
Wilson, Ian H
Wuensch, Walter
author_facet Raguin, J Y
Schulte, Daniel
Syratchev, I V
Wilson, Ian H
Wuensch, Walter
author_sort Raguin, J Y
collection CERN
description The main performance limits when designing accelerating structures for the Compact Linear Collider (CLIC) for an average accelerating gradient above 100 MV/m are electrical breakdown and material fatigue caused by pulsed surface heating. In addition, for stable beam operation, the structures should have low short-range transverse wakefields and much-reduced transverse and longitudinal long-range wakefields. Two damped and tapered accelerating structures have been designed. The first has an accelerating gradient of 112 MV/m with the surface electrical field limited to 300 MV/m and the maximum temperature increase limited to 100°C. The second, with an accelerating gradient of 150 MV/m, has a peak surface electrical field of 392 MV/m and a maximum temperature increase of 167°C. Innovations to the cell and damping waveguide geometry and to the tapering of the structures are presented, and possible further improvements are proposed.
id cern-580384
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2002
record_format invenio
spelling cern-5803842023-08-17T09:45:15Zhttp://cds.cern.ch/record/580384engRaguin, J YSchulte, DanielSyratchev, I VWilson, Ian HWuensch, WalterA New Damped and Tapered Accelerating Structure for CLICAccelerators and Storage RingsThe main performance limits when designing accelerating structures for the Compact Linear Collider (CLIC) for an average accelerating gradient above 100 MV/m are electrical breakdown and material fatigue caused by pulsed surface heating. In addition, for stable beam operation, the structures should have low short-range transverse wakefields and much-reduced transverse and longitudinal long-range wakefields. Two damped and tapered accelerating structures have been designed. The first has an accelerating gradient of 112 MV/m with the surface electrical field limited to 300 MV/m and the maximum temperature increase limited to 100°C. The second, with an accelerating gradient of 150 MV/m, has a peak surface electrical field of 392 MV/m and a maximum temperature increase of 167°C. Innovations to the cell and damping waveguide geometry and to the tapering of the structures are presented, and possible further improvements are proposed.CERN-PS-2002-063-RFCLIC-Note-536oai:cds.cern.ch:5803842002-09-10
spellingShingle Accelerators and Storage Rings
Raguin, J Y
Schulte, Daniel
Syratchev, I V
Wilson, Ian H
Wuensch, Walter
A New Damped and Tapered Accelerating Structure for CLIC
title A New Damped and Tapered Accelerating Structure for CLIC
title_full A New Damped and Tapered Accelerating Structure for CLIC
title_fullStr A New Damped and Tapered Accelerating Structure for CLIC
title_full_unstemmed A New Damped and Tapered Accelerating Structure for CLIC
title_short A New Damped and Tapered Accelerating Structure for CLIC
title_sort new damped and tapered accelerating structure for clic
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/580384
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