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Fabrication and Analysis of 150 mm Aperture Nb$_{3}$Sn LARP MQXF Coils

The US LHC Accelerator Research Program (LARP) and CERN are combining efforts for the HiLumi-LHC upgrade to design and fabricate 150 mm aperture, interaction region quadrupoles with a nominal gradient of 130 T/m using Nb$_{3}$Sn. To successfully produce the necessary long MQXF triplets, the HiLumi-L...

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Autores principales: Holik, E F, Ambrosio, G, Anerella, M, Bossert, R, Cavanna, E, Cheng, D, Dietderich, D R, Ferracin, P, Ghosh, A K, Izquierdo Bermudez, S, Krave, S, Nobrega, A, Perez, J C, Pong, I, Rochepault, Sabbi, G L, Schmalzle, J, Yu, M
Lenguaje:eng
Publicado: 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1109/TASC.2015.2514193
http://cds.cern.ch/record/2262290
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author Holik, E F
Ambrosio, G
Anerella, M
Bossert, R
Cavanna, E
Cheng, D
Dietderich, D R
Ferracin, P
Ghosh, A K
Izquierdo Bermudez, S
Krave, S
Nobrega, A
Perez, J C
Pong, I
Rochepault
Sabbi, G L
Schmalzle, J
Yu, M
author_facet Holik, E F
Ambrosio, G
Anerella, M
Bossert, R
Cavanna, E
Cheng, D
Dietderich, D R
Ferracin, P
Ghosh, A K
Izquierdo Bermudez, S
Krave, S
Nobrega, A
Perez, J C
Pong, I
Rochepault
Sabbi, G L
Schmalzle, J
Yu, M
author_sort Holik, E F
collection CERN
description The US LHC Accelerator Research Program (LARP) and CERN are combining efforts for the HiLumi-LHC upgrade to design and fabricate 150 mm aperture, interaction region quadrupoles with a nominal gradient of 130 T/m using Nb$_{3}$Sn. To successfully produce the necessary long MQXF triplets, the HiLumi-LHC collaboration is systematically reducing risk and design modification by heavily relying upon the experience gained from the successful 120 mm aperture LARP HQ program. First generation MQXF short (MQXFS) coils were predominately a scaling up of the HQ quadrupole design allowing comparable cable expansion during Nb$_{3}$Sn formation heat treatment and increased insulation fraction for electrical robustness. A total of 13 first generation MQXFS coils were fabricated between LARP and CERN. Systematic differences in coil size, coil alignment symmetry, and coil length contraction during heat treatment are observed and likely due to slight variances in tooling and insulation/cable systems. Analysis of coil cross sections indicate that field-shaping wedges and adjacent coil turns are systematically displaced from the nominal location and the cable is expanding less than nominally designed. A second generation MQXF coil design seeks to correct the expansion and displacement discrepancies by increasing insulation and adding adjustable shims at the coil pole and midplanes to correct allowed magnetic field harmonics.
id oai-inspirehep.net-1409684
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2016
record_format invenio
spelling oai-inspirehep.net-14096842020-08-28T12:57:10Zdoi:10.1109/TASC.2015.2514193http://cds.cern.ch/record/2262290engHolik, E FAmbrosio, GAnerella, MBossert, RCavanna, ECheng, DDietderich, D RFerracin, PGhosh, A KIzquierdo Bermudez, SKrave, SNobrega, APerez, J CPong, IRochepaultSabbi, G LSchmalzle, JYu, MFabrication and Analysis of 150 mm Aperture Nb$_{3}$Sn LARP MQXF CoilsAccelerators and Storage RingsThe US LHC Accelerator Research Program (LARP) and CERN are combining efforts for the HiLumi-LHC upgrade to design and fabricate 150 mm aperture, interaction region quadrupoles with a nominal gradient of 130 T/m using Nb$_{3}$Sn. To successfully produce the necessary long MQXF triplets, the HiLumi-LHC collaboration is systematically reducing risk and design modification by heavily relying upon the experience gained from the successful 120 mm aperture LARP HQ program. First generation MQXF short (MQXFS) coils were predominately a scaling up of the HQ quadrupole design allowing comparable cable expansion during Nb$_{3}$Sn formation heat treatment and increased insulation fraction for electrical robustness. A total of 13 first generation MQXFS coils were fabricated between LARP and CERN. Systematic differences in coil size, coil alignment symmetry, and coil length contraction during heat treatment are observed and likely due to slight variances in tooling and insulation/cable systems. Analysis of coil cross sections indicate that field-shaping wedges and adjacent coil turns are systematically displaced from the nominal location and the cable is expanding less than nominally designed. A second generation MQXF coil design seeks to correct the expansion and displacement discrepancies by increasing insulation and adding adjustable shims at the coil pole and midplanes to correct allowed magnetic field harmonics.FERMILAB-PUB-15-358-TDoai:inspirehep.net:14096842016
spellingShingle Accelerators and Storage Rings
Holik, E F
Ambrosio, G
Anerella, M
Bossert, R
Cavanna, E
Cheng, D
Dietderich, D R
Ferracin, P
Ghosh, A K
Izquierdo Bermudez, S
Krave, S
Nobrega, A
Perez, J C
Pong, I
Rochepault
Sabbi, G L
Schmalzle, J
Yu, M
Fabrication and Analysis of 150 mm Aperture Nb$_{3}$Sn LARP MQXF Coils
title Fabrication and Analysis of 150 mm Aperture Nb$_{3}$Sn LARP MQXF Coils
title_full Fabrication and Analysis of 150 mm Aperture Nb$_{3}$Sn LARP MQXF Coils
title_fullStr Fabrication and Analysis of 150 mm Aperture Nb$_{3}$Sn LARP MQXF Coils
title_full_unstemmed Fabrication and Analysis of 150 mm Aperture Nb$_{3}$Sn LARP MQXF Coils
title_short Fabrication and Analysis of 150 mm Aperture Nb$_{3}$Sn LARP MQXF Coils
title_sort fabrication and analysis of 150 mm aperture nb$_{3}$sn larp mqxf coils
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1109/TASC.2015.2514193
http://cds.cern.ch/record/2262290
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