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Performance of the Large Hadron Collider's Cryogenic Bypass Diodes Over the First Two Physics Runs, Future Projects, and Perspectives

Cryogenic bypass diodes have been installed in all superconducting dipole magnets (1232) and quadrupole magnets (392) of the Large Hadron Collider (LHC) at CERN, and operated during the physics runs since 2009. The bypass diodes are a fundamental ingredient of the quench protection system for those...

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Autores principales: D'Angelo, Giorgio, Charifoulline, Zinour, Denz, Reiner, Favre, Mathieu, Hagedorn, Dietrich, Monteuuis, Arnaud, Rodriguez-Mateos, Felix, Siemko, Andrzej, Stachon, Krzysztof, Verweij, Arjan, Will, Andreas, Wollmann, Daniel
Lenguaje:eng
Publicado: 2020
Acceso en línea:https://dx.doi.org/10.1109/TASC.2020.2970909
http://cds.cern.ch/record/2744539
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author D'Angelo, Giorgio
Charifoulline, Zinour
Denz, Reiner
Favre, Mathieu
Hagedorn, Dietrich
Monteuuis, Arnaud
Rodriguez-Mateos, Felix
Siemko, Andrzej
Stachon, Krzysztof
Verweij, Arjan
Will, Andreas
Wollmann, Daniel
author_facet D'Angelo, Giorgio
Charifoulline, Zinour
Denz, Reiner
Favre, Mathieu
Hagedorn, Dietrich
Monteuuis, Arnaud
Rodriguez-Mateos, Felix
Siemko, Andrzej
Stachon, Krzysztof
Verweij, Arjan
Will, Andreas
Wollmann, Daniel
author_sort D'Angelo, Giorgio
collection CERN
description Cryogenic bypass diodes have been installed in all superconducting dipole magnets (1232) and quadrupole magnets (392) of the Large Hadron Collider (LHC) at CERN, and operated during the physics runs since 2009. The bypass diodes are a fundamental ingredient of the quench protection system for those main dipoles and quadrupoles magnets. The diodes are located inside the magnet cryostats, operating in superfluid helium and exposed to ionizing radiation. The connection between the superconducting magnet and the bypass diode is made through a mechanical clamping system and copper bus bars. Since their first installation, all LHC diodes have undergone at least two full thermal cycles (from 1.9 K to room temperature and back to superfluid helium temperature). The evolution of electrical parameters as well as improvements and modifications made over a period of 10 years are reviewed in this paper. With CERN preparing for LHC's High Luminosity era, the long-term strategy for cold diodes is presented, based on the overall results and experience gathered so far, including the studies related to the tolerance with respect to the radiation doses and neutron fluences expected.
id oai-inspirehep.net-1825890
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
record_format invenio
spelling oai-inspirehep.net-18258902020-12-14T13:46:14Zdoi:10.1109/TASC.2020.2970909http://cds.cern.ch/record/2744539engD'Angelo, GiorgioCharifoulline, ZinourDenz, ReinerFavre, MathieuHagedorn, DietrichMonteuuis, ArnaudRodriguez-Mateos, FelixSiemko, AndrzejStachon, KrzysztofVerweij, ArjanWill, AndreasWollmann, DanielPerformance of the Large Hadron Collider's Cryogenic Bypass Diodes Over the First Two Physics Runs, Future Projects, and PerspectivesCryogenic bypass diodes have been installed in all superconducting dipole magnets (1232) and quadrupole magnets (392) of the Large Hadron Collider (LHC) at CERN, and operated during the physics runs since 2009. The bypass diodes are a fundamental ingredient of the quench protection system for those main dipoles and quadrupoles magnets. The diodes are located inside the magnet cryostats, operating in superfluid helium and exposed to ionizing radiation. The connection between the superconducting magnet and the bypass diode is made through a mechanical clamping system and copper bus bars. Since their first installation, all LHC diodes have undergone at least two full thermal cycles (from 1.9 K to room temperature and back to superfluid helium temperature). The evolution of electrical parameters as well as improvements and modifications made over a period of 10 years are reviewed in this paper. With CERN preparing for LHC's High Luminosity era, the long-term strategy for cold diodes is presented, based on the overall results and experience gathered so far, including the studies related to the tolerance with respect to the radiation doses and neutron fluences expected.oai:inspirehep.net:18258902020
spellingShingle D'Angelo, Giorgio
Charifoulline, Zinour
Denz, Reiner
Favre, Mathieu
Hagedorn, Dietrich
Monteuuis, Arnaud
Rodriguez-Mateos, Felix
Siemko, Andrzej
Stachon, Krzysztof
Verweij, Arjan
Will, Andreas
Wollmann, Daniel
Performance of the Large Hadron Collider's Cryogenic Bypass Diodes Over the First Two Physics Runs, Future Projects, and Perspectives
title Performance of the Large Hadron Collider's Cryogenic Bypass Diodes Over the First Two Physics Runs, Future Projects, and Perspectives
title_full Performance of the Large Hadron Collider's Cryogenic Bypass Diodes Over the First Two Physics Runs, Future Projects, and Perspectives
title_fullStr Performance of the Large Hadron Collider's Cryogenic Bypass Diodes Over the First Two Physics Runs, Future Projects, and Perspectives
title_full_unstemmed Performance of the Large Hadron Collider's Cryogenic Bypass Diodes Over the First Two Physics Runs, Future Projects, and Perspectives
title_short Performance of the Large Hadron Collider's Cryogenic Bypass Diodes Over the First Two Physics Runs, Future Projects, and Perspectives
title_sort performance of the large hadron collider's cryogenic bypass diodes over the first two physics runs, future projects, and perspectives
url https://dx.doi.org/10.1109/TASC.2020.2970909
http://cds.cern.ch/record/2744539
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