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STEAM: A Hierarchical Cosimulation Framework for Superconducting Accelerator Magnet Circuits

Simulating the transient effects occurring in superconducting accelerator magnet circuits requires including the mutual electro-thermo-dynamic interaction among the circuit elements, such as power converters, magnets, and protection systems. Nevertheless, the numerical analysis is traditionally done...

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Detalles Bibliográficos
Autores principales: Bortot, L., Auchmann, B., Garcia, I.Cortes, Fernandez Navarro, A.M., Maciejewski, M., Mentink, M., Prioli, M., Ravaioli, E., Schöps, S., Verweij, A.P.
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1109/TASC.2017.2787665
http://cds.cern.ch/record/2302450
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author Bortot, L.
Auchmann, B.
Garcia, I.Cortes
Fernandez Navarro, A.M.
Maciejewski, M.
Mentink, M.
Prioli, M.
Ravaioli, E.
Schöps, S.
Verweij, A.P.
author_facet Bortot, L.
Auchmann, B.
Garcia, I.Cortes
Fernandez Navarro, A.M.
Maciejewski, M.
Mentink, M.
Prioli, M.
Ravaioli, E.
Schöps, S.
Verweij, A.P.
author_sort Bortot, L.
collection CERN
description Simulating the transient effects occurring in superconducting accelerator magnet circuits requires including the mutual electro-thermo-dynamic interaction among the circuit elements, such as power converters, magnets, and protection systems. Nevertheless, the numerical analysis is traditionally done separately for each element in the circuit, leading to possible inconsistent results. We present STEAM, a hierarchical cosimulation framework featuring the waveform relaxation method. The framework simulates a complex system as a composition of simpler, independent models that exchange information. The convergence of the coupling algorithm ensures the consistency of the solution. The modularity of the framework allows integrating models developed with both proprietary and in-house tools. The framework implements a user-customizable hierarchical algorithm to schedule how models participate to the cosimulation, for the purpose of using computational resources efficiently. As a case study, a quench scenario is cosimulated for the inner triplet circuit for the high luminosity upgrade of the Large Hadron Collider at CERN.
id cern-2302450
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
record_format invenio
spelling cern-23024502021-09-19T13:49:24Zdoi:10.1109/TASC.2017.2787665http://cds.cern.ch/record/2302450engBortot, L.Auchmann, B.Garcia, I.CortesFernandez Navarro, A.M.Maciejewski, M.Mentink, M.Prioli, M.Ravaioli, E.Schöps, S.Verweij, A.P.STEAM: A Hierarchical Cosimulation Framework for Superconducting Accelerator Magnet CircuitsEngineeringSimulating the transient effects occurring in superconducting accelerator magnet circuits requires including the mutual electro-thermo-dynamic interaction among the circuit elements, such as power converters, magnets, and protection systems. Nevertheless, the numerical analysis is traditionally done separately for each element in the circuit, leading to possible inconsistent results. We present STEAM, a hierarchical cosimulation framework featuring the waveform relaxation method. The framework simulates a complex system as a composition of simpler, independent models that exchange information. The convergence of the coupling algorithm ensures the consistency of the solution. The modularity of the framework allows integrating models developed with both proprietary and in-house tools. The framework implements a user-customizable hierarchical algorithm to schedule how models participate to the cosimulation, for the purpose of using computational resources efficiently. As a case study, a quench scenario is cosimulated for the inner triplet circuit for the high luminosity upgrade of the Large Hadron Collider at CERN.Simulating the transient effects occurring in superconducting accelerator magnet circuits requires including the mutual electro-thermo-dynamic interaction among the circuit elements, such as power converters,arXiv:1801.08957oai:cds.cern.ch:23024502018-01-26
spellingShingle Engineering
Bortot, L.
Auchmann, B.
Garcia, I.Cortes
Fernandez Navarro, A.M.
Maciejewski, M.
Mentink, M.
Prioli, M.
Ravaioli, E.
Schöps, S.
Verweij, A.P.
STEAM: A Hierarchical Cosimulation Framework for Superconducting Accelerator Magnet Circuits
title STEAM: A Hierarchical Cosimulation Framework for Superconducting Accelerator Magnet Circuits
title_full STEAM: A Hierarchical Cosimulation Framework for Superconducting Accelerator Magnet Circuits
title_fullStr STEAM: A Hierarchical Cosimulation Framework for Superconducting Accelerator Magnet Circuits
title_full_unstemmed STEAM: A Hierarchical Cosimulation Framework for Superconducting Accelerator Magnet Circuits
title_short STEAM: A Hierarchical Cosimulation Framework for Superconducting Accelerator Magnet Circuits
title_sort steam: a hierarchical cosimulation framework for superconducting accelerator magnet circuits
topic Engineering
url https://dx.doi.org/10.1109/TASC.2017.2787665
http://cds.cern.ch/record/2302450
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