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Slip-Stick Mechanism in Training the Superconducting Magnets in the Large Hadron Collider

Superconducting magnets can exhibit training quenches during successive powering to reaching nominal performance. The slip-stick motion of the conductors is considered to be one of the mechanisms of training. In this paper, we present a simple quantitative model where the training is described as a...

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Detalles Bibliográficos
Autores principales: Granieri, P P, Todesco, E, Lorin, C
Lenguaje:eng
Publicado: 2011
Materias:
XX
Acceso en línea:https://dx.doi.org/10.1109/TASC.2011.2162727
http://cds.cern.ch/record/1399677
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author Granieri, P P
Todesco, E
Lorin, C
author_facet Granieri, P P
Todesco, E
Lorin, C
author_sort Granieri, P P
collection CERN
description Superconducting magnets can exhibit training quenches during successive powering to reaching nominal performance. The slip-stick motion of the conductors is considered to be one of the mechanisms of training. In this paper, we present a simple quantitative model where the training is described as a discrete dynamical system matching the equilibrium between the energy margin of the superconducting cable and the frictional energy released during the conductor motion. The model can be explicitly solved in the linearized case, showing that the short sample limit is reached via a power law. Training phenomena have a large random component. A large set of data of the large hadron collider magnet tests is postprocessed according to previously defined methods to extract an average training curve for dipoles and quadrupoles. These curves show the asymptotic power law predicted by the model. The curves are then fit through the model, which has two free parameters. The model shows good agreement over a large range, but it fails to describe the very initial part of the training.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2011
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spelling cern-13996772019-09-30T06:29:59Zdoi:10.1109/TASC.2011.2162727http://cds.cern.ch/record/1399677engGranieri, P PTodesco, ELorin, CSlip-Stick Mechanism in Training the Superconducting Magnets in the Large Hadron ColliderXXXXSuperconducting magnets can exhibit training quenches during successive powering to reaching nominal performance. The slip-stick motion of the conductors is considered to be one of the mechanisms of training. In this paper, we present a simple quantitative model where the training is described as a discrete dynamical system matching the equilibrium between the energy margin of the superconducting cable and the frictional energy released during the conductor motion. The model can be explicitly solved in the linearized case, showing that the short sample limit is reached via a power law. Training phenomena have a large random component. A large set of data of the large hadron collider magnet tests is postprocessed according to previously defined methods to extract an average training curve for dipoles and quadrupoles. These curves show the asymptotic power law predicted by the model. The curves are then fit through the model, which has two free parameters. The model shows good agreement over a large range, but it fails to describe the very initial part of the training.oai:cds.cern.ch:13996772011
spellingShingle XX
XX
Granieri, P P
Todesco, E
Lorin, C
Slip-Stick Mechanism in Training the Superconducting Magnets in the Large Hadron Collider
title Slip-Stick Mechanism in Training the Superconducting Magnets in the Large Hadron Collider
title_full Slip-Stick Mechanism in Training the Superconducting Magnets in the Large Hadron Collider
title_fullStr Slip-Stick Mechanism in Training the Superconducting Magnets in the Large Hadron Collider
title_full_unstemmed Slip-Stick Mechanism in Training the Superconducting Magnets in the Large Hadron Collider
title_short Slip-Stick Mechanism in Training the Superconducting Magnets in the Large Hadron Collider
title_sort slip-stick mechanism in training the superconducting magnets in the large hadron collider
topic XX
XX
url https://dx.doi.org/10.1109/TASC.2011.2162727
http://cds.cern.ch/record/1399677
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AT todescoe slipstickmechanismintrainingthesuperconductingmagnetsinthelargehadroncollider
AT lorinc slipstickmechanismintrainingthesuperconductingmagnetsinthelargehadroncollider