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Multiphysics Modelling of the LHC Individually Powered Quadrupole Superconducting Circuits

This thesis describes the generation and the validation of the models of LHC Individually-Powered Quadrupole (IPQ) superconducting circuits. These circuits include magnets made of Nb-Ti superconductor, working at a temperature of 1.9 K or 4.5 K, and with a nominal current of 3610 A or 5390 A. They a...

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Autor principal: Murgia, Federica
Lenguaje:eng
Publicado: 2020
Materias:
Acceso en línea:http://cds.cern.ch/record/2729131
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author Murgia, Federica
author_facet Murgia, Federica
author_sort Murgia, Federica
collection CERN
description This thesis describes the generation and the validation of the models of LHC Individually-Powered Quadrupole (IPQ) superconducting circuits. These circuits include magnets made of Nb-Ti superconductor, working at a temperature of 1.9 K or 4.5 K, and with a nominal current of 3610 A or 5390 A. They are protected against the effects of a quench by quench heaters. The purpose of this work is to generate the electrical circuit using STEAM-SING and the electro thermal model using STEAM-LEDET, and validate them with the tests performed during the LHC Hardware Commissioning. Furthermore, the validated circuit and magnet models can be run together in a cooperative simulation using STEAM-COSIM, which can exchange information between several models in order to obtain a consistent solution. For the validation different types of transients have been used, in particular, Slow Power Abort for the validation of the electrical circuit model and Fast Power Abort for the validation of the electro-thermal model and the co-simulation. The validated models are now part of the library of LHC superconducting circuit models developed with the STEAM framework.
id cern-2729131
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
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spelling cern-27291312020-10-06T12:56:29Zhttp://cds.cern.ch/record/2729131engMurgia, FedericaMultiphysics Modelling of the LHC Individually Powered Quadrupole Superconducting CircuitsAccelerators and Storage RingsThis thesis describes the generation and the validation of the models of LHC Individually-Powered Quadrupole (IPQ) superconducting circuits. These circuits include magnets made of Nb-Ti superconductor, working at a temperature of 1.9 K or 4.5 K, and with a nominal current of 3610 A or 5390 A. They are protected against the effects of a quench by quench heaters. The purpose of this work is to generate the electrical circuit using STEAM-SING and the electro thermal model using STEAM-LEDET, and validate them with the tests performed during the LHC Hardware Commissioning. Furthermore, the validated circuit and magnet models can be run together in a cooperative simulation using STEAM-COSIM, which can exchange information between several models in order to obtain a consistent solution. For the validation different types of transients have been used, in particular, Slow Power Abort for the validation of the electrical circuit model and Fast Power Abort for the validation of the electro-thermal model and the co-simulation. The validated models are now part of the library of LHC superconducting circuit models developed with the STEAM framework.CERN-THESIS-2020-102oai:cds.cern.ch:27291312020-08-28T14:19:09Z
spellingShingle Accelerators and Storage Rings
Murgia, Federica
Multiphysics Modelling of the LHC Individually Powered Quadrupole Superconducting Circuits
title Multiphysics Modelling of the LHC Individually Powered Quadrupole Superconducting Circuits
title_full Multiphysics Modelling of the LHC Individually Powered Quadrupole Superconducting Circuits
title_fullStr Multiphysics Modelling of the LHC Individually Powered Quadrupole Superconducting Circuits
title_full_unstemmed Multiphysics Modelling of the LHC Individually Powered Quadrupole Superconducting Circuits
title_short Multiphysics Modelling of the LHC Individually Powered Quadrupole Superconducting Circuits
title_sort multiphysics modelling of the lhc individually powered quadrupole superconducting circuits
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/2729131
work_keys_str_mv AT murgiafederica multiphysicsmodellingofthelhcindividuallypoweredquadrupolesuperconductingcircuits