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Analysis of the quench propagation along Nb$_{3}$Sn Rutherford cables with the THELMA code. Part II: application to the quench longitudinal propagation

To improve the technology of the new generation of accelerator magnets, prototypes are being manufactured and tested in several laboratories. In parallel, many numerical analyses are being carried out to predict the magnets behaviour and interpret the experimental results. This paper focuses on the...

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Autores principales: Manfreda, G., Bellina, F., Bajas, H., Perez, J.C.
Formato: info:eu-repo/semantics/article
Lenguaje:eng
Publicado: Cryogenics 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1016/j.cryogenics.2016.03.004
http://cds.cern.ch/record/2162894
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author Manfreda, G.
Bellina, F.
Bajas, H.
Perez, J.C.
author_facet Manfreda, G.
Bellina, F.
Bajas, H.
Perez, J.C.
author_sort Manfreda, G.
collection CERN
description To improve the technology of the new generation of accelerator magnets, prototypes are being manufactured and tested in several laboratories. In parallel, many numerical analyses are being carried out to predict the magnets behaviour and interpret the experimental results. This paper focuses on the quench propagation velocity, which is a crucial parameter as regards the energy dissipation along the magnet conductor. The THELMA code, originally developed for cable-in-conduit conductors for fusion magnets, has been used to study such quench propagation. To this purpose, new code modules have been added to describe the Rutherford cable geometry, the material non-linear thermal properties and to describe the thermal conduction problem in transient regime. THELMA can describe the Rutherford cable at the strand level, modelling both the electrical and thermal contact resistances between strands and enabling the analysis of the effects of local hot spots and quench heaters. This paper describes the model application to a sample of Short Model Coil tested at CERN: a comparison is made between the experimental results and the model prediction, showing a good agreement. A comparison is also made with the prediction of the most common analytical models, which give large inaccuracies when dealing with low n-index cables like Nb$_{3}$Sn cables.
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spelling cern-21628942019-09-30T06:29:59Z doi:10.1016/j.cryogenics.2016.03.004 http://cds.cern.ch/record/2162894 eng Manfreda, G. Bellina, F. Bajas, H. Perez, J.C. Analysis of the quench propagation along Nb$_{3}$Sn Rutherford cables with the THELMA code. Part II: application to the quench longitudinal propagation Accelerators and Storage Rings 9: HiRadMat@SPS and MagNet@CERN 9.2: MagNet@CERN To improve the technology of the new generation of accelerator magnets, prototypes are being manufactured and tested in several laboratories. In parallel, many numerical analyses are being carried out to predict the magnets behaviour and interpret the experimental results. This paper focuses on the quench propagation velocity, which is a crucial parameter as regards the energy dissipation along the magnet conductor. The THELMA code, originally developed for cable-in-conduit conductors for fusion magnets, has been used to study such quench propagation. To this purpose, new code modules have been added to describe the Rutherford cable geometry, the material non-linear thermal properties and to describe the thermal conduction problem in transient regime. THELMA can describe the Rutherford cable at the strand level, modelling both the electrical and thermal contact resistances between strands and enabling the analysis of the effects of local hot spots and quench heaters. This paper describes the model application to a sample of Short Model Coil tested at CERN: a comparison is made between the experimental results and the model prediction, showing a good agreement. A comparison is also made with the prediction of the most common analytical models, which give large inaccuracies when dealing with low n-index cables like Nb$_{3}$Sn cables. info:eu-repo/grantAgreement/EC/FP7/312453 info:eu-repo/semantics/openAccess Education Level info:eu-repo/semantics/article http://cds.cern.ch/record/2162894 Cryogenics Cryogenics, (2016) pp. 364–373 2016
spellingShingle Accelerators and Storage Rings
9: HiRadMat@SPS and MagNet@CERN
9.2: MagNet@CERN
Manfreda, G.
Bellina, F.
Bajas, H.
Perez, J.C.
Analysis of the quench propagation along Nb$_{3}$Sn Rutherford cables with the THELMA code. Part II: application to the quench longitudinal propagation
title Analysis of the quench propagation along Nb$_{3}$Sn Rutherford cables with the THELMA code. Part II: application to the quench longitudinal propagation
title_full Analysis of the quench propagation along Nb$_{3}$Sn Rutherford cables with the THELMA code. Part II: application to the quench longitudinal propagation
title_fullStr Analysis of the quench propagation along Nb$_{3}$Sn Rutherford cables with the THELMA code. Part II: application to the quench longitudinal propagation
title_full_unstemmed Analysis of the quench propagation along Nb$_{3}$Sn Rutherford cables with the THELMA code. Part II: application to the quench longitudinal propagation
title_short Analysis of the quench propagation along Nb$_{3}$Sn Rutherford cables with the THELMA code. Part II: application to the quench longitudinal propagation
title_sort analysis of the quench propagation along nb$_{3}$sn rutherford cables with the thelma code. part ii: application to the quench longitudinal propagation
topic Accelerators and Storage Rings
9: HiRadMat@SPS and MagNet@CERN
9.2: MagNet@CERN
url https://dx.doi.org/10.1016/j.cryogenics.2016.03.004
http://cds.cern.ch/record/2162894
http://cds.cern.ch/record/2162894
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