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Magnetic and mechanical design of a 15-T large aperture dipole magnet for cable testing

A large aperture Nb$_3$Sn dipole is proposed to replace the magnet assembly of EDIPO, which was irreversibly damaged in 2016. The goal is to generate a background field of 15 T at 4.2 K in a clear aperture of approximately 100×150 mm$^2$ and over a uniform length of 1000 mm in order to test supercon...

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Autores principales: Sarasola, Xabier, Bruzzone, Pierluigi, Bottura, Luca, Ferracin, Paolo, Araujo, Douglas Martins, de Rijk, Gijs, Cau, Francesca, Portone, Alfredo, Testoni, Pietro, Prestemon, Soren, Sabbi, GianLuca, Minervini, Joseph
Lenguaje:eng
Publicado: 2019
Materias:
Acceso en línea:https://dx.doi.org/10.1109/TASC.2019.2896954
http://cds.cern.ch/record/2688857
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author Sarasola, Xabier
Bruzzone, Pierluigi
Bottura, Luca
Ferracin, Paolo
Araujo, Douglas Martins
de Rijk, Gijs
Cau, Francesca
Portone, Alfredo
Testoni, Pietro
Prestemon, Soren
Sabbi, GianLuca
Minervini, Joseph
author_facet Sarasola, Xabier
Bruzzone, Pierluigi
Bottura, Luca
Ferracin, Paolo
Araujo, Douglas Martins
de Rijk, Gijs
Cau, Francesca
Portone, Alfredo
Testoni, Pietro
Prestemon, Soren
Sabbi, GianLuca
Minervini, Joseph
author_sort Sarasola, Xabier
collection CERN
description A large aperture Nb$_3$Sn dipole is proposed to replace the magnet assembly of EDIPO, which was irreversibly damaged in 2016. The goal is to generate a background field of 15 T at 4.2 K in a clear aperture of approximately 100×150 mm$^2$ and over a uniform length of 1000 mm in order to test superconducting cables for both fusion and high-energy physics applications. The magnet features a block-type coil design wound with wide Rutherford cable (two alternative coil cross sections are considered) and supported by a mechanical structure based on keys-and-bladders technology. In the end regions, the coils tilt up (flare) through a hard-way bend of the cables to provide room for the test well, following a layout already adopted in the LBNL HD2 and CERN-CEA FRESCA2 magnets. The two considered coil design alternatives aim at minimizing the mechanical stress in the coil windings. One coil pack design makes the use of two double pancake coils per pole, whereas the other alternative features three double pancakes per pole. Both design options are presented focusing on the results of numerical computations carried out with finite-element models to investigate peak stresses in the coils during room-temperature pre-loading, cool down, and powering.
id oai-inspirehep.net-1746820
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2019
record_format invenio
spelling oai-inspirehep.net-17468202019-09-30T06:29:59Zdoi:10.1109/TASC.2019.2896954http://cds.cern.ch/record/2688857engSarasola, XabierBruzzone, PierluigiBottura, LucaFerracin, PaoloAraujo, Douglas Martinsde Rijk, GijsCau, FrancescaPortone, AlfredoTestoni, PietroPrestemon, SorenSabbi, GianLucaMinervini, JosephMagnetic and mechanical design of a 15-T large aperture dipole magnet for cable testingAccelerators and Storage RingsA large aperture Nb$_3$Sn dipole is proposed to replace the magnet assembly of EDIPO, which was irreversibly damaged in 2016. The goal is to generate a background field of 15 T at 4.2 K in a clear aperture of approximately 100×150 mm$^2$ and over a uniform length of 1000 mm in order to test superconducting cables for both fusion and high-energy physics applications. The magnet features a block-type coil design wound with wide Rutherford cable (two alternative coil cross sections are considered) and supported by a mechanical structure based on keys-and-bladders technology. In the end regions, the coils tilt up (flare) through a hard-way bend of the cables to provide room for the test well, following a layout already adopted in the LBNL HD2 and CERN-CEA FRESCA2 magnets. The two considered coil design alternatives aim at minimizing the mechanical stress in the coil windings. One coil pack design makes the use of two double pancake coils per pole, whereas the other alternative features three double pancakes per pole. Both design options are presented focusing on the results of numerical computations carried out with finite-element models to investigate peak stresses in the coils during room-temperature pre-loading, cool down, and powering.oai:inspirehep.net:17468202019
spellingShingle Accelerators and Storage Rings
Sarasola, Xabier
Bruzzone, Pierluigi
Bottura, Luca
Ferracin, Paolo
Araujo, Douglas Martins
de Rijk, Gijs
Cau, Francesca
Portone, Alfredo
Testoni, Pietro
Prestemon, Soren
Sabbi, GianLuca
Minervini, Joseph
Magnetic and mechanical design of a 15-T large aperture dipole magnet for cable testing
title Magnetic and mechanical design of a 15-T large aperture dipole magnet for cable testing
title_full Magnetic and mechanical design of a 15-T large aperture dipole magnet for cable testing
title_fullStr Magnetic and mechanical design of a 15-T large aperture dipole magnet for cable testing
title_full_unstemmed Magnetic and mechanical design of a 15-T large aperture dipole magnet for cable testing
title_short Magnetic and mechanical design of a 15-T large aperture dipole magnet for cable testing
title_sort magnetic and mechanical design of a 15-t large aperture dipole magnet for cable testing
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1109/TASC.2019.2896954
http://cds.cern.ch/record/2688857
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