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Advanced Quench Protection for the Nb$_3$Sn Quadrupoles for the High Luminosity LHC

The goal of the High Luminosity LHC project is upgrading the LHC in order to increase its luminosity by a factor of five. To achieve this, 24 150-mm-aperture 12-T Nb_3Sn quadrupole magnets are to be installed close to the two interaction regions at ATLAS and CMS. This new generation of high-field ma...

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Autores principales: Ravaioli, E, Auchmann, B, Datskov, V I, Blomberg Ghini, J, Dahlerup-Petersen, K, Fernandez Navarro, A M, Kirby, G, Maciejewski, M, Rodriguez Mateos, F, ten Kate, H H J, Verweij, A P
Lenguaje:eng
Publicado: 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1109/TASC.2016.2524464
http://cds.cern.ch/record/2261959
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author Ravaioli, E
Auchmann, B
Datskov, V I
Blomberg Ghini, J
Dahlerup-Petersen, K
Fernandez Navarro, A M
Kirby, G
Maciejewski, M
Rodriguez Mateos, F
ten Kate, H H J
Verweij, A P
author_facet Ravaioli, E
Auchmann, B
Datskov, V I
Blomberg Ghini, J
Dahlerup-Petersen, K
Fernandez Navarro, A M
Kirby, G
Maciejewski, M
Rodriguez Mateos, F
ten Kate, H H J
Verweij, A P
author_sort Ravaioli, E
collection CERN
description The goal of the High Luminosity LHC project is upgrading the LHC in order to increase its luminosity by a factor of five. To achieve this, 24 150-mm-aperture 12-T Nb_3Sn quadrupole magnets are to be installed close to the two interaction regions at ATLAS and CMS. This new generation of high-field magnets poses a significant challenge concerning the protection of the coils in the case of a quench. The very high stored energy per unit volume requires a fast and effective quench heating system in order to limit the hot-spot temperature and hence avoid damage due to overheating. Conventional protection systems based on quench heaters have a limited response time due to the thermal insulation between the heater and the coil. An advanced solution for the protection of high-field magnets is the coupling-loss induced quench (CLIQ) system, recently developed at CERN. Due to its fast intrawire energy-deposition mechanism, CLIQ is a very effective, yet electrically robust, quench protection system. Various protection scenarios, including quench heaters, CLIQ, or combinations of the two methods, are analyzed and discussed, with the aim of minimizing the coil's hot-spot temperature and thermal gradients during the discharge. The proposed design assures a fully redundant system.
id oai-inspirehep.net-1479341
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2016
record_format invenio
spelling oai-inspirehep.net-14793412019-09-30T06:29:59Zdoi:10.1109/TASC.2016.2524464http://cds.cern.ch/record/2261959engRavaioli, EAuchmann, BDatskov, V IBlomberg Ghini, JDahlerup-Petersen, KFernandez Navarro, A MKirby, GMaciejewski, MRodriguez Mateos, Ften Kate, H H JVerweij, A PAdvanced Quench Protection for the Nb$_3$Sn Quadrupoles for the High Luminosity LHCAccelerators and Storage RingsThe goal of the High Luminosity LHC project is upgrading the LHC in order to increase its luminosity by a factor of five. To achieve this, 24 150-mm-aperture 12-T Nb_3Sn quadrupole magnets are to be installed close to the two interaction regions at ATLAS and CMS. This new generation of high-field magnets poses a significant challenge concerning the protection of the coils in the case of a quench. The very high stored energy per unit volume requires a fast and effective quench heating system in order to limit the hot-spot temperature and hence avoid damage due to overheating. Conventional protection systems based on quench heaters have a limited response time due to the thermal insulation between the heater and the coil. An advanced solution for the protection of high-field magnets is the coupling-loss induced quench (CLIQ) system, recently developed at CERN. Due to its fast intrawire energy-deposition mechanism, CLIQ is a very effective, yet electrically robust, quench protection system. Various protection scenarios, including quench heaters, CLIQ, or combinations of the two methods, are analyzed and discussed, with the aim of minimizing the coil's hot-spot temperature and thermal gradients during the discharge. The proposed design assures a fully redundant system.oai:inspirehep.net:14793412016
spellingShingle Accelerators and Storage Rings
Ravaioli, E
Auchmann, B
Datskov, V I
Blomberg Ghini, J
Dahlerup-Petersen, K
Fernandez Navarro, A M
Kirby, G
Maciejewski, M
Rodriguez Mateos, F
ten Kate, H H J
Verweij, A P
Advanced Quench Protection for the Nb$_3$Sn Quadrupoles for the High Luminosity LHC
title Advanced Quench Protection for the Nb$_3$Sn Quadrupoles for the High Luminosity LHC
title_full Advanced Quench Protection for the Nb$_3$Sn Quadrupoles for the High Luminosity LHC
title_fullStr Advanced Quench Protection for the Nb$_3$Sn Quadrupoles for the High Luminosity LHC
title_full_unstemmed Advanced Quench Protection for the Nb$_3$Sn Quadrupoles for the High Luminosity LHC
title_short Advanced Quench Protection for the Nb$_3$Sn Quadrupoles for the High Luminosity LHC
title_sort advanced quench protection for the nb$_3$sn quadrupoles for the high luminosity lhc
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1109/TASC.2016.2524464
http://cds.cern.ch/record/2261959
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