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Coupling of Magneto-Thermal and Mechanical Superconducting Magnet Models by Means of Mesh-Based Interpolation

In this paper we present an algorithm for the coupling of magneto-thermal and mechanical finite element models representing superconducting accelerator magnets. The mechanical models are used during the design of the mechanical structure as well as the optimization of the magnetic field quality unde...

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Autores principales: Maciejewski, Michał, Bayrasy, Pascal, Wolf, Klaus, Wilczek, Michał, Auchmann, Bernhard, Griesemer, Tina, Bortot, Lorenzo, Prioli, Marco, Fernandez Navarro, Alejandro Manuel, Schöps, Sebastian, Garcia, Idoia Cortes, Verweij, Arjan
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1109/TASC.2017.2786721
http://cds.cern.ch/record/2299675
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author Maciejewski, Michał
Bayrasy, Pascal
Wolf, Klaus
Wilczek, Michał
Auchmann, Bernhard
Griesemer, Tina
Bortot, Lorenzo
Prioli, Marco
Fernandez Navarro, Alejandro Manuel
Schöps, Sebastian
Garcia, Idoia Cortes
Verweij, Arjan
author_facet Maciejewski, Michał
Bayrasy, Pascal
Wolf, Klaus
Wilczek, Michał
Auchmann, Bernhard
Griesemer, Tina
Bortot, Lorenzo
Prioli, Marco
Fernandez Navarro, Alejandro Manuel
Schöps, Sebastian
Garcia, Idoia Cortes
Verweij, Arjan
author_sort Maciejewski, Michał
collection CERN
description In this paper we present an algorithm for the coupling of magneto-thermal and mechanical finite element models representing superconducting accelerator magnets. The mechanical models are used during the design of the mechanical structure as well as the optimization of the magnetic field quality under nominal conditions. The magneto-thermal models allow for the analysis of transient phenomena occurring during quench initiation, propagation, and protection. Mechanical analysis of quenching magnets is of high importance considering the design of new protection systems and the study of new superconductor types. We use field/circuit coupling to determine temperature and electromagnetic force evolution during the magnet discharge. These quantities are provided as a load to existing mechanical models. The models are discretized with different meshes and, therefore, we employ a mesh-based interpolation method to exchange coupled quantities. The coupling algorithm is illustrated with a simulation of a mechanical response of a standalone high-field dipole magnet protected with CLIQ (Coupling-Loss Induced Quench) technology.
id oai-inspirehep.net-1645462
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2017
record_format invenio
spelling oai-inspirehep.net-16454622023-03-14T19:23:13Zdoi:10.1109/TASC.2017.2786721http://cds.cern.ch/record/2299675engMaciejewski, MichałBayrasy, PascalWolf, KlausWilczek, MichałAuchmann, BernhardGriesemer, TinaBortot, LorenzoPrioli, MarcoFernandez Navarro, Alejandro ManuelSchöps, SebastianGarcia, Idoia CortesVerweij, ArjanCoupling of Magneto-Thermal and Mechanical Superconducting Magnet Models by Means of Mesh-Based Interpolationphysics.comp-phAccelerators and Storage RingsComputing and Computersmath.NAMathematical Physics and Mathematicscs.CEIn this paper we present an algorithm for the coupling of magneto-thermal and mechanical finite element models representing superconducting accelerator magnets. The mechanical models are used during the design of the mechanical structure as well as the optimization of the magnetic field quality under nominal conditions. The magneto-thermal models allow for the analysis of transient phenomena occurring during quench initiation, propagation, and protection. Mechanical analysis of quenching magnets is of high importance considering the design of new protection systems and the study of new superconductor types. We use field/circuit coupling to determine temperature and electromagnetic force evolution during the magnet discharge. These quantities are provided as a load to existing mechanical models. The models are discretized with different meshes and, therefore, we employ a mesh-based interpolation method to exchange coupled quantities. The coupling algorithm is illustrated with a simulation of a mechanical response of a standalone high-field dipole magnet protected with CLIQ (Coupling-Loss Induced Quench) technology.arXiv:1712.10191oai:inspirehep.net:16454622017-12-29
spellingShingle physics.comp-ph
Accelerators and Storage Rings
Computing and Computers
math.NA
Mathematical Physics and Mathematics
cs.CE
Maciejewski, Michał
Bayrasy, Pascal
Wolf, Klaus
Wilczek, Michał
Auchmann, Bernhard
Griesemer, Tina
Bortot, Lorenzo
Prioli, Marco
Fernandez Navarro, Alejandro Manuel
Schöps, Sebastian
Garcia, Idoia Cortes
Verweij, Arjan
Coupling of Magneto-Thermal and Mechanical Superconducting Magnet Models by Means of Mesh-Based Interpolation
title Coupling of Magneto-Thermal and Mechanical Superconducting Magnet Models by Means of Mesh-Based Interpolation
title_full Coupling of Magneto-Thermal and Mechanical Superconducting Magnet Models by Means of Mesh-Based Interpolation
title_fullStr Coupling of Magneto-Thermal and Mechanical Superconducting Magnet Models by Means of Mesh-Based Interpolation
title_full_unstemmed Coupling of Magneto-Thermal and Mechanical Superconducting Magnet Models by Means of Mesh-Based Interpolation
title_short Coupling of Magneto-Thermal and Mechanical Superconducting Magnet Models by Means of Mesh-Based Interpolation
title_sort coupling of magneto-thermal and mechanical superconducting magnet models by means of mesh-based interpolation
topic physics.comp-ph
Accelerators and Storage Rings
Computing and Computers
math.NA
Mathematical Physics and Mathematics
cs.CE
url https://dx.doi.org/10.1109/TASC.2017.2786721
http://cds.cern.ch/record/2299675
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