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Novel Geometries for the LHC CRAB Cavity

In 2017 the LHC is envisioned to increase its luminosity via an upgrade. This upgrade is likely to require a large crossing angle hence a crab cavity is required to align the bunches prior to collision. There are two possible schemes for crab cavity implementation, global and local. In a global crab...

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Autores principales: Hall, Ben, Burt, Graeme, Smith, Jonathan, Rimmer, Robert, Wang, Haipeng, Delayen, Jean, Calaga, Rama
Formato: info:eu-repo/semantics/article
Lenguaje:eng
Publicado: 2010
Materias:
Acceso en línea:http://cds.cern.ch/record/1277713
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author Hall, Ben
Burt, Graeme
Smith, Jonathan
Rimmer, Robert
Wang, Haipeng
Delayen, Jean
Calaga, Rama
author_facet Hall, Ben
Burt, Graeme
Smith, Jonathan
Rimmer, Robert
Wang, Haipeng
Delayen, Jean
Calaga, Rama
author_sort Hall, Ben
collection CERN
description In 2017 the LHC is envisioned to increase its luminosity via an upgrade. This upgrade is likely to require a large crossing angle hence a crab cavity is required to align the bunches prior to collision. There are two possible schemes for crab cavity implementation, global and local. In a global crab cavity the crab cavity is far from the IP and the bunch rotates back and forward as it traverses around the accelerator in a closed orbit. For this scheme a two-cell elliptical squashed cavity at 800 MHz is preferred. To avoid any potential beam instabilities all the parasitic modes of the cavities must be damped strongly, however crab cavities have lower order and same order modes in addition to the usual higher order modes and hence a novel damping scheme must be used to provide sufficient damping of these modes. In the local scheme two crab cavities are placed at each side of the IP two start and stop rotation of the bunches. This would require crab cavities much smaller transversely than in the global scheme but the frequency cannot be increased any higher due to the long bunch length of the LHC beam. This will require a novel compact crab cavity design. A superconducting version of a two rod coaxial deflecting cavity as a suitable design is proposed in this paper.
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spelling cern-12777132019-09-30T06:29:59Z http://cds.cern.ch/record/1277713 eng Hall, Ben Burt, Graeme Smith, Jonathan Rimmer, Robert Wang, Haipeng Delayen, Jean Calaga, Rama Novel Geometries for the LHC CRAB Cavity Accelerators and Storage Rings 10: SC RF technology for higher intensity proton accelerators and higher energy electron linacs In 2017 the LHC is envisioned to increase its luminosity via an upgrade. This upgrade is likely to require a large crossing angle hence a crab cavity is required to align the bunches prior to collision. There are two possible schemes for crab cavity implementation, global and local. In a global crab cavity the crab cavity is far from the IP and the bunch rotates back and forward as it traverses around the accelerator in a closed orbit. For this scheme a two-cell elliptical squashed cavity at 800 MHz is preferred. To avoid any potential beam instabilities all the parasitic modes of the cavities must be damped strongly, however crab cavities have lower order and same order modes in addition to the usual higher order modes and hence a novel damping scheme must be used to provide sufficient damping of these modes. In the local scheme two crab cavities are placed at each side of the IP two start and stop rotation of the bunches. This would require crab cavities much smaller transversely than in the global scheme but the frequency cannot be increased any higher due to the long bunch length of the LHC beam. This will require a novel compact crab cavity design. A superconducting version of a two rod coaxial deflecting cavity as a suitable design is proposed in this paper. info:eu-repo/grantAgreement/EC/FP7/227579 info:eu-repo/semantics/openAccess Education Level info:eu-repo/semantics/article http://cds.cern.ch/record/1277713 2010
spellingShingle Accelerators and Storage Rings
10: SC RF technology for higher intensity proton accelerators and higher energy electron linacs
Hall, Ben
Burt, Graeme
Smith, Jonathan
Rimmer, Robert
Wang, Haipeng
Delayen, Jean
Calaga, Rama
Novel Geometries for the LHC CRAB Cavity
title Novel Geometries for the LHC CRAB Cavity
title_full Novel Geometries for the LHC CRAB Cavity
title_fullStr Novel Geometries for the LHC CRAB Cavity
title_full_unstemmed Novel Geometries for the LHC CRAB Cavity
title_short Novel Geometries for the LHC CRAB Cavity
title_sort novel geometries for the lhc crab cavity
topic Accelerators and Storage Rings
10: SC RF technology for higher intensity proton accelerators and higher energy electron linacs
url http://cds.cern.ch/record/1277713
http://cds.cern.ch/record/1277713
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