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Cavity design for the CERN muon cooling channel

The cooling channel of the CERN reference scenario [1] for a possible neutrino factory [2] requires an approximately 200 m long lattice, which provides solenoidal magnetic fields plus longitudinal electric fields at the same time. The electric real estate field gradient along the structure shall be...

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Detalles Bibliográficos
Autores principales: Garoby, R, Gerigk, F
Lenguaje:eng
Publicado: 2001
Materias:
Acceso en línea:http://cds.cern.ch/record/519140
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author Garoby, R
Gerigk, F
author_facet Garoby, R
Gerigk, F
author_sort Garoby, R
collection CERN
description The cooling channel of the CERN reference scenario [1] for a possible neutrino factory [2] requires an approximately 200 m long lattice, which provides solenoidal magnetic fields plus longitudinal electric fields at the same time. The electric real estate field gradient along the structure shall be 2 MV/m at 44 MHz, or 4 MV/m at 88 MHz, respectively. The CERN approach incorporates the solenoids into the cavity geometry in order to avoid the large dimensions of solenoids surrounding the cavity structure. Since the idealistic assumption of a constant solenoidal field along the cooling channel is broken by this approach, an iteration between beam dynamics requirements and RF engineering feasibility is necessary to define an optimized structure. In this paper we describe the various cavity design options that have been considered up to now and we report on the preparation of a cavity test stand for a 88 MHz cavity.
id cern-519140
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2001
record_format invenio
spelling cern-5191402023-06-23T09:23:13Zhttp://cds.cern.ch/record/519140engGaroby, RGerigk, FCavity design for the CERN muon cooling channelAccelerators and Storage RingsThe cooling channel of the CERN reference scenario [1] for a possible neutrino factory [2] requires an approximately 200 m long lattice, which provides solenoidal magnetic fields plus longitudinal electric fields at the same time. The electric real estate field gradient along the structure shall be 2 MV/m at 44 MHz, or 4 MV/m at 88 MHz, respectively. The CERN approach incorporates the solenoids into the cavity geometry in order to avoid the large dimensions of solenoids surrounding the cavity structure. Since the idealistic assumption of a constant solenoidal field along the cooling channel is broken by this approach, an iteration between beam dynamics requirements and RF engineering feasibility is necessary to define an optimized structure. In this paper we describe the various cavity design options that have been considered up to now and we report on the preparation of a cavity test stand for a 88 MHz cavity.CERN-OPEN-2002-021CERN-NEUTRINO-FACTORY-NOTE-87CERN-NUFACT-NOTE-87CERN-PS-RF-NOTE-2001-014oai:cds.cern.ch:5191402001
spellingShingle Accelerators and Storage Rings
Garoby, R
Gerigk, F
Cavity design for the CERN muon cooling channel
title Cavity design for the CERN muon cooling channel
title_full Cavity design for the CERN muon cooling channel
title_fullStr Cavity design for the CERN muon cooling channel
title_full_unstemmed Cavity design for the CERN muon cooling channel
title_short Cavity design for the CERN muon cooling channel
title_sort cavity design for the cern muon cooling channel
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/519140
work_keys_str_mv AT garobyr cavitydesignforthecernmuoncoolingchannel
AT gerigkf cavitydesignforthecernmuoncoolingchannel