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The influence of the Al stabilizer layer thickness on the normal zone propagation velocity in high current superconductors

The stability of high-current superconductors is challenging in the design of superconducting magnets. When the stability requirements are fulfilled, the protection against a quench must still be considered. A main factor in the design of quench protection systems is the resistance growth rate in th...

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Detalles Bibliográficos
Autores principales: Shilon, I., Dudarev, A., Langeslag, S.A.E., Martins, L.P., ten Kate, H.H.J.
Lenguaje:eng
Publicado: 2014
Materias:
Acceso en línea:https://dx.doi.org/10.1016/j.phpro.2015.06.151
http://cds.cern.ch/record/1753737
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author Shilon, I.
Dudarev, A.
Langeslag, S.A.E.
Martins, L.P.
ten Kate, H.H.J.
author_facet Shilon, I.
Dudarev, A.
Langeslag, S.A.E.
Martins, L.P.
ten Kate, H.H.J.
author_sort Shilon, I.
collection CERN
description The stability of high-current superconductors is challenging in the design of superconducting magnets. When the stability requirements are fulfilled, the protection against a quench must still be considered. A main factor in the design of quench protection systems is the resistance growth rate in the magnet following a quench. The usual method for determining the resistance growth in impregnated coils is to calculate the longitudinal velocity with which the normal zone propagates in the conductor along the coil windings. Here, we present a 2D numerical model for predicting the normal zone propagation velocity in Al stabilized Rutherford NbTi cables with large cross section. By solving two coupled differential equations under adiabatic conditions, the model takes into account the thermal diffusion and the current redistribution process following a quench. Both the temperature and magnetic field dependencies of the superconductor and the metal cladding materials properties are included. Unlike common normal zone propagation analyses, we study the influence of the thickness of the cladding on the propagation velocity for varying operating current and magnetic field. To assist in the comprehension of the numerical results, we also introduce an analytical formula for the longitudinal normal zone propagation. The analysis distinguishes between low-current and high-current regimes of normal zone propagation, depending on the ratio between the characteristic times of thermal and magnetic diffusion. We show that above a certain thickness, the cladding acts as a heat sink with a limited contribution to the acceleration of the propagation velocity with respect to the cladding geometry. Both numerical and analytical results show good agreement with experimental data.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2014
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spelling cern-17537372023-05-06T02:40:52Zdoi:10.1016/j.phpro.2015.06.151http://cds.cern.ch/record/1753737engShilon, I.Dudarev, A.Langeslag, S.A.E.Martins, L.P.ten Kate, H.H.J.The influence of the Al stabilizer layer thickness on the normal zone propagation velocity in high current superconductorsAccelerators and Storage RingsThe stability of high-current superconductors is challenging in the design of superconducting magnets. When the stability requirements are fulfilled, the protection against a quench must still be considered. A main factor in the design of quench protection systems is the resistance growth rate in the magnet following a quench. The usual method for determining the resistance growth in impregnated coils is to calculate the longitudinal velocity with which the normal zone propagates in the conductor along the coil windings. Here, we present a 2D numerical model for predicting the normal zone propagation velocity in Al stabilized Rutherford NbTi cables with large cross section. By solving two coupled differential equations under adiabatic conditions, the model takes into account the thermal diffusion and the current redistribution process following a quench. Both the temperature and magnetic field dependencies of the superconductor and the metal cladding materials properties are included. Unlike common normal zone propagation analyses, we study the influence of the thickness of the cladding on the propagation velocity for varying operating current and magnetic field. To assist in the comprehension of the numerical results, we also introduce an analytical formula for the longitudinal normal zone propagation. The analysis distinguishes between low-current and high-current regimes of normal zone propagation, depending on the ratio between the characteristic times of thermal and magnetic diffusion. We show that above a certain thickness, the cladding acts as a heat sink with a limited contribution to the acceleration of the propagation velocity with respect to the cladding geometry. Both numerical and analytical results show good agreement with experimental data.We present a two dimensional numerical model for predicting the normal zone propagation velocity in Aluminum stabilized Rutherford NbTi cables. By solving two coupled differential equations under adiabatic conditions, the model takes into account the thermal diffusion and the current redistribution process following a quench. Both the temperature and magnetic field dependencies of the materials properties are included. We study the influence of the thickness of the cladding on the propagation velocity for varying operating current and magnetic field. To assist in the comprehension of the numerical results, we introduce an analytical formula for the longitudinal normal zone propagation.The stability of high-current superconductors is challenging in the design of superconducting magnets. When the stability requirements are fulfilled, the protection against a quench must still be considered. A main factor in the design of quench protection systems is the resistance growth rate in the magnet following a quench. The usual method for determining the resistance growth in impregnated coils is to calculate the longitudinal velocity with which the normal zone propagates in the conductor along the coil windings. Here, we present a 2D numerical model for predicting the normal zone propagation velocity in Al stabilized Rutherford NbTi cables with large cross section. By solving two coupled differential equations under adiabatic conditions, the model takes into account the thermal diffusion and the current redistribution process following a quench. Both the temperature and magnetic field dependencies of the superconductor and the metal cladding materials properties are included. Unlike common normal zone propagation analyses, we study the influence of the thickness of the cladding on the propagation velocity for varying operating current and magnetic field. To assist in the comprehension of the numerical results, we also introduce an analytical formula for the longitudinal normal zone propagation. The analysis distinguishes between low-current and high-current regimes of normal zone propagation, depending on the ratio between the characteristic times of thermal and magnetic diffusion. We show that above a certain thickness, the cladding acts as a heat sink with a limited contribution to the acceleration of the propagation velocity with respect to the cladding geometry. Both numerical and analytical results show good agreement with experimental data.arXiv:1409.1186oai:cds.cern.ch:17537372014-09-03
spellingShingle Accelerators and Storage Rings
Shilon, I.
Dudarev, A.
Langeslag, S.A.E.
Martins, L.P.
ten Kate, H.H.J.
The influence of the Al stabilizer layer thickness on the normal zone propagation velocity in high current superconductors
title The influence of the Al stabilizer layer thickness on the normal zone propagation velocity in high current superconductors
title_full The influence of the Al stabilizer layer thickness on the normal zone propagation velocity in high current superconductors
title_fullStr The influence of the Al stabilizer layer thickness on the normal zone propagation velocity in high current superconductors
title_full_unstemmed The influence of the Al stabilizer layer thickness on the normal zone propagation velocity in high current superconductors
title_short The influence of the Al stabilizer layer thickness on the normal zone propagation velocity in high current superconductors
title_sort influence of the al stabilizer layer thickness on the normal zone propagation velocity in high current superconductors
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1016/j.phpro.2015.06.151
http://cds.cern.ch/record/1753737
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