Cargando…
The Second LHC Long Shutdown (LS2) for the Superconducting Magnets
The Large Hadron Collider (LHC) has been delivering data to the physics experiments since 2009. It first operated at a centre of mass energy of 7 TeV and 8 TeV up to the first long shutdown (LS1) in 2013-14. The 13 kA splices between the main LHC cryomagnets were consolidated during LS1. Then, it wa...
Autores principales: | , , , , , , , , , , , |
---|---|
Lenguaje: | eng |
Publicado: |
2018
|
Materias: | |
Acceso en línea: | https://dx.doi.org/10.18429/JACoW-IPAC2018-MOPMF056 http://cds.cern.ch/record/2649811 |
_version_ | 1780960771981705216 |
---|---|
author | Tock, Jean-Philippe Bednarek, Mateusz Bottura, Luca Karentzos, Efstathios Le Naour, Sandrine Meuter, Florian Pojer, Mirko Scheuerlein, Christian Todesco, Ezio Tommasini, Davide Van Den Boogaard, Lisette Willering, Gerard |
author_facet | Tock, Jean-Philippe Bednarek, Mateusz Bottura, Luca Karentzos, Efstathios Le Naour, Sandrine Meuter, Florian Pojer, Mirko Scheuerlein, Christian Todesco, Ezio Tommasini, Davide Van Den Boogaard, Lisette Willering, Gerard |
author_sort | Tock, Jean-Philippe |
collection | CERN |
description | The Large Hadron Collider (LHC) has been delivering data to the physics experiments since 2009. It first operated at a centre of mass energy of 7 TeV and 8 TeV up to the first long shutdown (LS1) in 2013-14. The 13 kA splices between the main LHC cryomagnets were consolidated during LS1. Then, it was possible to increase safely the centre of mass energy to 13 TeV. During the training campaigns, metallic debris caused short circuits in the dipole diode containers, leading to an unacceptable risk. Major interventions can only take place during multiyear shutdowns. To ensure safe operation at higher energies, hence requiring further magnets training, the electrical insulation of the 1232 dipole diodes bus-bars will be consolidated during the second LHC long shutdown (LS2) in 2019-20. The design of the reinforced electrical insulation of the dipole cold diodes and the associated project organisation are presented, including the validation tests, especially at cryogenics temperature. During LS2, maintenance interventions on the LHC cryomagnets will also be performed, following the plan based on a statistical analysis of the electrical faults. It is inscribed in the overall strategy to produce collisions at 14 TeV, the LHC design energy, and to push it further towards 15 TeV. We give a first guess on the impact on the LHC failure rate. |
id | oai-inspirehep.net-1691345 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2018 |
record_format | invenio |
spelling | oai-inspirehep.net-16913452020-12-14T14:02:08Zdoi:10.18429/JACoW-IPAC2018-MOPMF056http://cds.cern.ch/record/2649811engTock, Jean-PhilippeBednarek, MateuszBottura, LucaKarentzos, EfstathiosLe Naour, SandrineMeuter, FlorianPojer, MirkoScheuerlein, ChristianTodesco, EzioTommasini, DavideVan Den Boogaard, LisetteWillering, GerardThe Second LHC Long Shutdown (LS2) for the Superconducting MagnetsAccelerators and Storage RingsThe Large Hadron Collider (LHC) has been delivering data to the physics experiments since 2009. It first operated at a centre of mass energy of 7 TeV and 8 TeV up to the first long shutdown (LS1) in 2013-14. The 13 kA splices between the main LHC cryomagnets were consolidated during LS1. Then, it was possible to increase safely the centre of mass energy to 13 TeV. During the training campaigns, metallic debris caused short circuits in the dipole diode containers, leading to an unacceptable risk. Major interventions can only take place during multiyear shutdowns. To ensure safe operation at higher energies, hence requiring further magnets training, the electrical insulation of the 1232 dipole diodes bus-bars will be consolidated during the second LHC long shutdown (LS2) in 2019-20. The design of the reinforced electrical insulation of the dipole cold diodes and the associated project organisation are presented, including the validation tests, especially at cryogenics temperature. During LS2, maintenance interventions on the LHC cryomagnets will also be performed, following the plan based on a statistical analysis of the electrical faults. It is inscribed in the overall strategy to produce collisions at 14 TeV, the LHC design energy, and to push it further towards 15 TeV. We give a first guess on the impact on the LHC failure rate.CERN-ACC-2018-114oai:inspirehep.net:16913452018 |
spellingShingle | Accelerators and Storage Rings Tock, Jean-Philippe Bednarek, Mateusz Bottura, Luca Karentzos, Efstathios Le Naour, Sandrine Meuter, Florian Pojer, Mirko Scheuerlein, Christian Todesco, Ezio Tommasini, Davide Van Den Boogaard, Lisette Willering, Gerard The Second LHC Long Shutdown (LS2) for the Superconducting Magnets |
title | The Second LHC Long Shutdown (LS2) for the Superconducting Magnets |
title_full | The Second LHC Long Shutdown (LS2) for the Superconducting Magnets |
title_fullStr | The Second LHC Long Shutdown (LS2) for the Superconducting Magnets |
title_full_unstemmed | The Second LHC Long Shutdown (LS2) for the Superconducting Magnets |
title_short | The Second LHC Long Shutdown (LS2) for the Superconducting Magnets |
title_sort | second lhc long shutdown (ls2) for the superconducting magnets |
topic | Accelerators and Storage Rings |
url | https://dx.doi.org/10.18429/JACoW-IPAC2018-MOPMF056 http://cds.cern.ch/record/2649811 |
work_keys_str_mv | AT tockjeanphilippe thesecondlhclongshutdownls2forthesuperconductingmagnets AT bednarekmateusz thesecondlhclongshutdownls2forthesuperconductingmagnets AT botturaluca thesecondlhclongshutdownls2forthesuperconductingmagnets AT karentzosefstathios thesecondlhclongshutdownls2forthesuperconductingmagnets AT lenaoursandrine thesecondlhclongshutdownls2forthesuperconductingmagnets AT meuterflorian thesecondlhclongshutdownls2forthesuperconductingmagnets AT pojermirko thesecondlhclongshutdownls2forthesuperconductingmagnets AT scheuerleinchristian thesecondlhclongshutdownls2forthesuperconductingmagnets AT todescoezio thesecondlhclongshutdownls2forthesuperconductingmagnets AT tommasinidavide thesecondlhclongshutdownls2forthesuperconductingmagnets AT vandenboogaardlisette thesecondlhclongshutdownls2forthesuperconductingmagnets AT willeringgerard thesecondlhclongshutdownls2forthesuperconductingmagnets AT tockjeanphilippe secondlhclongshutdownls2forthesuperconductingmagnets AT bednarekmateusz secondlhclongshutdownls2forthesuperconductingmagnets AT botturaluca secondlhclongshutdownls2forthesuperconductingmagnets AT karentzosefstathios secondlhclongshutdownls2forthesuperconductingmagnets AT lenaoursandrine secondlhclongshutdownls2forthesuperconductingmagnets AT meuterflorian secondlhclongshutdownls2forthesuperconductingmagnets AT pojermirko secondlhclongshutdownls2forthesuperconductingmagnets AT scheuerleinchristian secondlhclongshutdownls2forthesuperconductingmagnets AT todescoezio secondlhclongshutdownls2forthesuperconductingmagnets AT tommasinidavide secondlhclongshutdownls2forthesuperconductingmagnets AT vandenboogaardlisette secondlhclongshutdownls2forthesuperconductingmagnets AT willeringgerard secondlhclongshutdownls2forthesuperconductingmagnets |