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Superconducting detector magnets for high energy physics

Various superconducting detector solenoids for particlephysics have been developed in the world. The key technology is thealuminum-stabilized superconductor for almost all the detectormagnets in particle physics experiments. The coil fabricationtechnology is also important and it has advanced along...

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Autores principales: Mentink, Matthias, Sasaki, Ken-ichi, Cure, Benoit, Deelen, Nikkie, Dudarev, Alexey, Abe, Mitsushi, Iio, Masami, Makida, Yasuhiro, Okamura, Takahiro, Ogitsu, Toru, Sumi, Naoyuki, Yamamoto, Akira, Yoshida, Makoto, Iinuma, Hiromi
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1748-0221/18/06/T06013
http://cds.cern.ch/record/2806069
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author Mentink, Matthias
Sasaki, Ken-ichi
Cure, Benoit
Deelen, Nikkie
Dudarev, Alexey
Abe, Mitsushi
Iio, Masami
Makida, Yasuhiro
Okamura, Takahiro
Ogitsu, Toru
Sumi, Naoyuki
Yamamoto, Akira
Yoshida, Makoto
Iinuma, Hiromi
author_facet Mentink, Matthias
Sasaki, Ken-ichi
Cure, Benoit
Deelen, Nikkie
Dudarev, Alexey
Abe, Mitsushi
Iio, Masami
Makida, Yasuhiro
Okamura, Takahiro
Ogitsu, Toru
Sumi, Naoyuki
Yamamoto, Akira
Yoshida, Makoto
Iinuma, Hiromi
author_sort Mentink, Matthias
collection CERN
description Various superconducting detector solenoids for particlephysics have been developed in the world. The key technology is thealuminum-stabilized superconductor for almost all the detectormagnets in particle physics experiments. The coil fabricationtechnology is also important and it has advanced along with theconductor technology, such as the inner coil winding technique,indirect cooling, transparent vacuum vessel, quench protectionscheme using pure aluminum strips and so on. The detector solenoidsdesign study is in progress for future big projects in Japan andEurope, that is, ILC (International Linear Collider), FCC (FutureCircular Collider) and CLIC (Compact LInear Collider), based on thetechnologies established over many years. The combination of goodmechanical properties and keeping a high RRR is a key point for thedevelopment of Al-stabilized conductor. The present concern for thedetector solenoid development is to have been nearly losing the keytechnologies and experiences. Nowadays, there are no industrialcompanies having the capacity to manufacture such aluminumstabilized superconductor. Complementary efforts are seriouslyrequired to re-realize and validate the performance required in thefuture projects in collaboration with worldwide institutes andindustries. Some mid-scale physics experiments required detectorsolenoids wound with not aluminum stabilized conductor butconventional copper stabilized conductor. The specific requirementis to control the magnetic field distribution precisely, and theefforts to realize the requirement are on going with regard to themagnetic field design technology with high precision simulation,coil fabrication technology and so on.
id cern-2806069
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2022
record_format invenio
spelling cern-28060692023-07-14T04:05:21Zdoi:10.1088/1748-0221/18/06/T06013http://cds.cern.ch/record/2806069engMentink, MatthiasSasaki, Ken-ichiCure, BenoitDeelen, NikkieDudarev, AlexeyAbe, MitsushiIio, MasamiMakida, YasuhiroOkamura, TakahiroOgitsu, ToruSumi, NaoyukiYamamoto, AkiraYoshida, MakotoIinuma, HiromiSuperconducting detector magnets for high energy physicsphysics.acc-phAccelerators and Storage Ringsphysics.ins-detDetectors and Experimental TechniquesVarious superconducting detector solenoids for particlephysics have been developed in the world. The key technology is thealuminum-stabilized superconductor for almost all the detectormagnets in particle physics experiments. The coil fabricationtechnology is also important and it has advanced along with theconductor technology, such as the inner coil winding technique,indirect cooling, transparent vacuum vessel, quench protectionscheme using pure aluminum strips and so on. The detector solenoidsdesign study is in progress for future big projects in Japan andEurope, that is, ILC (International Linear Collider), FCC (FutureCircular Collider) and CLIC (Compact LInear Collider), based on thetechnologies established over many years. The combination of goodmechanical properties and keeping a high RRR is a key point for thedevelopment of Al-stabilized conductor. The present concern for thedetector solenoid development is to have been nearly losing the keytechnologies and experiences. Nowadays, there are no industrialcompanies having the capacity to manufacture such aluminumstabilized superconductor. Complementary efforts are seriouslyrequired to re-realize and validate the performance required in thefuture projects in collaboration with worldwide institutes andindustries. Some mid-scale physics experiments required detectorsolenoids wound with not aluminum stabilized conductor butconventional copper stabilized conductor. The specific requirementis to control the magnetic field distribution precisely, and theefforts to realize the requirement are on going with regard to themagnetic field design technology with high precision simulation,coil fabrication technology and so on.Various superconducting detector solenoids for particle physics have been developed in the world. The key technology is the aluminum-stabilized superconducting conductor for almost all the detector magnets in particle physics experiments. With the progress of the conductor, the coil fabrication technology has progressed as well, such as the inner coil winding technique, indirect cooling, transparent vacuum vessel, quench protection scheme using pure aluminum strips and so on. The detector solenoids design study is in progress for future big projects in Japan and Europe, that is, ILC, FCC and CLIC, based on the technologies established over many years. The combination of good mechanical properties and keeping a high RRR is a key point for the development of Al-stabilized conductor. The present concern for the detector solenoid development is to have been gradually losing the key technologies and experiences, because large-scale detector magnets with Al-stabilized conductor has not been fabricated after the success of CMS and ATLAS-CS in LHC. Complementary efforts are needed to resume an equivalent level of expertise, to extend the effort on research and to develop these technologies and apply them to future detector magnet projects. Especially, further effort is necessary for the industrial technology of Al-stabilized superconductor production. The worldwide collaboration with relevant institutes and industries will be critically important to re-realize and validate the required performances. Some detector solenoids for mid-scale experiment wound with conventional copper-stabilized Nb-Ti conductor require precise control of magnetic field distribution. The development efforts are on-going in terms of the magnetic field design technology with high precision simulation, coil fabrication technology and control method of magnetic field distribution.arXiv:2203.07799oai:cds.cern.ch:28060692022-03-15
spellingShingle physics.acc-ph
Accelerators and Storage Rings
physics.ins-det
Detectors and Experimental Techniques
Mentink, Matthias
Sasaki, Ken-ichi
Cure, Benoit
Deelen, Nikkie
Dudarev, Alexey
Abe, Mitsushi
Iio, Masami
Makida, Yasuhiro
Okamura, Takahiro
Ogitsu, Toru
Sumi, Naoyuki
Yamamoto, Akira
Yoshida, Makoto
Iinuma, Hiromi
Superconducting detector magnets for high energy physics
title Superconducting detector magnets for high energy physics
title_full Superconducting detector magnets for high energy physics
title_fullStr Superconducting detector magnets for high energy physics
title_full_unstemmed Superconducting detector magnets for high energy physics
title_short Superconducting detector magnets for high energy physics
title_sort superconducting detector magnets for high energy physics
topic physics.acc-ph
Accelerators and Storage Rings
physics.ins-det
Detectors and Experimental Techniques
url https://dx.doi.org/10.1088/1748-0221/18/06/T06013
http://cds.cern.ch/record/2806069
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