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Current Redistribution around the Superconducting-to-normal Transition in Superconducting Nb-Ti Rutherford Cables

Sufficient thermal-electromagnetic stability against external heat sources is an essential design criterion for superconducting Rutherford cables, especially if operated close to the critical current. Due to the complex phenomena contributing to stability such as helium cooling, inter-strand current...

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Detalles Bibliográficos
Autores principales: Willering, G P, Verweij, A, ten Kate, H H J
Lenguaje:eng
Publicado: 2007
Materias:
Acceso en línea:http://cds.cern.ch/record/1122754
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author Willering, G P
Verweij, A
ten Kate, H H J
author_facet Willering, G P
Verweij, A
ten Kate, H H J
author_sort Willering, G P
collection CERN
description Sufficient thermal-electromagnetic stability against external heat sources is an essential design criterion for superconducting Rutherford cables, especially if operated close to the critical current. Due to the complex phenomena contributing to stability such as helium cooling, inter-strand current and heat transfer, its level is difficult to quantify. In order to improve our understanding, many stability tests were performed on different cable samples, each incorporating several point-like heaters. The current redistribution around the heat front is measured after inducing a local normal zone in one strand of the cable. By using voltage taps, expansion of the normal zone is monitored in the initially quenched strand as well as in adjacent strands. An array of Hall probes positioned at the cable edge is used to scan the selffield generated by the cable by which it becomes possible to estimate the inter-strand current transfer. In this paper it is demonstrated that two different stability regimes can be distinguished depending on the local conditions for local normal zone recovery through heat and current transfer to adjacent strands. It is shown that in the first regime every normal zone will lead to a quench, while in the second regime a normal zone in one strand can recover. Combining the predictions developed using a novel version of the numerical network model CUDI and new measurement results, it is possible to derive char acteristic quench decision times as well to calculate and predict the influence of a change in cable parameters.
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spelling cern-11227542022-08-17T13:36:48Zhttp://cds.cern.ch/record/1122754engWillering, G PVerweij, Aten Kate, H H JCurrent Redistribution around the Superconducting-to-normal Transition in Superconducting Nb-Ti Rutherford CablesAccelerators and Storage RingsSufficient thermal-electromagnetic stability against external heat sources is an essential design criterion for superconducting Rutherford cables, especially if operated close to the critical current. Due to the complex phenomena contributing to stability such as helium cooling, inter-strand current and heat transfer, its level is difficult to quantify. In order to improve our understanding, many stability tests were performed on different cable samples, each incorporating several point-like heaters. The current redistribution around the heat front is measured after inducing a local normal zone in one strand of the cable. By using voltage taps, expansion of the normal zone is monitored in the initially quenched strand as well as in adjacent strands. An array of Hall probes positioned at the cable edge is used to scan the selffield generated by the cable by which it becomes possible to estimate the inter-strand current transfer. In this paper it is demonstrated that two different stability regimes can be distinguished depending on the local conditions for local normal zone recovery through heat and current transfer to adjacent strands. It is shown that in the first regime every normal zone will lead to a quench, while in the second regime a normal zone in one strand can recover. Combining the predictions developed using a novel version of the numerical network model CUDI and new measurement results, it is possible to derive char acteristic quench decision times as well to calculate and predict the influence of a change in cable parameters.CERN-AT-2007-040-MCSoai:cds.cern.ch:11227542007-12-20
spellingShingle Accelerators and Storage Rings
Willering, G P
Verweij, A
ten Kate, H H J
Current Redistribution around the Superconducting-to-normal Transition in Superconducting Nb-Ti Rutherford Cables
title Current Redistribution around the Superconducting-to-normal Transition in Superconducting Nb-Ti Rutherford Cables
title_full Current Redistribution around the Superconducting-to-normal Transition in Superconducting Nb-Ti Rutherford Cables
title_fullStr Current Redistribution around the Superconducting-to-normal Transition in Superconducting Nb-Ti Rutherford Cables
title_full_unstemmed Current Redistribution around the Superconducting-to-normal Transition in Superconducting Nb-Ti Rutherford Cables
title_short Current Redistribution around the Superconducting-to-normal Transition in Superconducting Nb-Ti Rutherford Cables
title_sort current redistribution around the superconducting-to-normal transition in superconducting nb-ti rutherford cables
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/1122754
work_keys_str_mv AT willeringgp currentredistributionaroundthesuperconductingtonormaltransitioninsuperconductingnbtirutherfordcables
AT verweija currentredistributionaroundthesuperconductingtonormaltransitioninsuperconductingnbtirutherfordcables
AT tenkatehhj currentredistributionaroundthesuperconductingtonormaltransitioninsuperconductingnbtirutherfordcables