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Training Behavior of the Main Dipoles in the Large Hadron Collider

In 2015, the 1232 Nb-Ti dipole magnets in the Large Hadron Collider (LHC) have been commissioned to 7.8 T operational field, with 172 quenches. More than 80% of these quenches occurred in the magnets of one of the three cold mass assemblers (3000 series), confirming what was already observed in 2008...

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Autores principales: Todesco, Ezio, Auchmann, Bernhard, Bajko, Marta, Bottura, Luca, Bruning, Oliver, De Rijk, Gijs, Fessia, Paolo, Hagen, Per, Naour, Sandrine Le, Modena, Michele, Perez, Juan Carlos, Rossi, Lucio, Schmidt, Rudiger, Siemko, Andrzej, Tock, Jean-Philippe, Tommasini, Davide, Verweij, Arjan, Willering, Gerard
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1109/TASC.2017.2657504
http://cds.cern.ch/record/2275317
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author Todesco, Ezio
Auchmann, Bernhard
Bajko, Marta
Bottura, Luca
Bruning, Oliver
De Rijk, Gijs
Fessia, Paolo
Hagen, Per
Naour, Sandrine Le
Modena, Michele
Perez, Juan Carlos
Rossi, Lucio
Schmidt, Rudiger
Siemko, Andrzej
Tock, Jean-Philippe
Tommasini, Davide
Verweij, Arjan
Willering, Gerard
author_facet Todesco, Ezio
Auchmann, Bernhard
Bajko, Marta
Bottura, Luca
Bruning, Oliver
De Rijk, Gijs
Fessia, Paolo
Hagen, Per
Naour, Sandrine Le
Modena, Michele
Perez, Juan Carlos
Rossi, Lucio
Schmidt, Rudiger
Siemko, Andrzej
Tock, Jean-Philippe
Tommasini, Davide
Verweij, Arjan
Willering, Gerard
author_sort Todesco, Ezio
collection CERN
description In 2015, the 1232 Nb-Ti dipole magnets in the Large Hadron Collider (LHC) have been commissioned to 7.8 T operational field, with 172 quenches. More than 80% of these quenches occurred in the magnets of one of the three cold mass assemblers (3000 series), confirming what was already observed in 2008. In this paper, the recent analysis carried out on the quench performance of the Large Hadron Collider dipole magnets is reported, including the individual reception tests and the 2008 and 2015 commissioning campaigns, to better understand the above-mentioned anomaly and give an outlook for future operation and possible increase of the operational field. The lower part of the quench probability spectrum is compatible with Gaussian distributions; therefore, the training curve can be fit through error functions. An essential ingredient in this analysis is the estimate of the error to be associated with the training data due to sampling of rare events, allowing to test different hypothesis. Using this approach, an estimate of the number of quenches required to reach 8.3 T (corresponding to the 7 TeV nominal energy) is given, and we propose to have two LHC sectors trained toward this target before the next warm up of the LHC.
id oai-inspirehep.net-1518311
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2017
record_format invenio
spelling oai-inspirehep.net-15183112019-09-30T06:29:59Zdoi:10.1109/TASC.2017.2657504http://cds.cern.ch/record/2275317engTodesco, EzioAuchmann, BernhardBajko, MartaBottura, LucaBruning, OliverDe Rijk, GijsFessia, PaoloHagen, PerNaour, Sandrine LeModena, MichelePerez, Juan CarlosRossi, LucioSchmidt, RudigerSiemko, AndrzejTock, Jean-PhilippeTommasini, DavideVerweij, ArjanWillering, GerardTraining Behavior of the Main Dipoles in the Large Hadron ColliderAccelerators and Storage RingsAccelerators and Storage RingsIn 2015, the 1232 Nb-Ti dipole magnets in the Large Hadron Collider (LHC) have been commissioned to 7.8 T operational field, with 172 quenches. More than 80% of these quenches occurred in the magnets of one of the three cold mass assemblers (3000 series), confirming what was already observed in 2008. In this paper, the recent analysis carried out on the quench performance of the Large Hadron Collider dipole magnets is reported, including the individual reception tests and the 2008 and 2015 commissioning campaigns, to better understand the above-mentioned anomaly and give an outlook for future operation and possible increase of the operational field. The lower part of the quench probability spectrum is compatible with Gaussian distributions; therefore, the training curve can be fit through error functions. An essential ingredient in this analysis is the estimate of the error to be associated with the training data due to sampling of rare events, allowing to test different hypothesis. Using this approach, an estimate of the number of quenches required to reach 8.3 T (corresponding to the 7 TeV nominal energy) is given, and we propose to have two LHC sectors trained toward this target before the next warm up of the LHC.oai:inspirehep.net:15183112017
spellingShingle Accelerators and Storage Rings
Accelerators and Storage Rings
Todesco, Ezio
Auchmann, Bernhard
Bajko, Marta
Bottura, Luca
Bruning, Oliver
De Rijk, Gijs
Fessia, Paolo
Hagen, Per
Naour, Sandrine Le
Modena, Michele
Perez, Juan Carlos
Rossi, Lucio
Schmidt, Rudiger
Siemko, Andrzej
Tock, Jean-Philippe
Tommasini, Davide
Verweij, Arjan
Willering, Gerard
Training Behavior of the Main Dipoles in the Large Hadron Collider
title Training Behavior of the Main Dipoles in the Large Hadron Collider
title_full Training Behavior of the Main Dipoles in the Large Hadron Collider
title_fullStr Training Behavior of the Main Dipoles in the Large Hadron Collider
title_full_unstemmed Training Behavior of the Main Dipoles in the Large Hadron Collider
title_short Training Behavior of the Main Dipoles in the Large Hadron Collider
title_sort training behavior of the main dipoles in the large hadron collider
topic Accelerators and Storage Rings
Accelerators and Storage Rings
url https://dx.doi.org/10.1109/TASC.2017.2657504
http://cds.cern.ch/record/2275317
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