Effect of coupling currents on the dynamic inductance during fast transient in superconducting magnets

We present electromagnetic models aiming to calculate the variation of the inductance in a magnet due to dynamic effects such as the variation of magnetization or the coupling with eddy currents. The models are studied with special regard to the calculation of the inductance in superconducting magne...

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Main Authors: V. Marinozzi, M. Sorbi, G. Manfreda, F. Bellina, H. Bajas, G. Chlachidze
Format: Article
Language:English
Published: American Physical Society 2015-03-01
Series:Physical Review Special Topics. Accelerators and Beams
Online Access:http://doi.org/10.1103/PhysRevSTAB.18.032401
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spelling doaj-27a3749850534229a802990acc61014f2020-11-24T21:25:46ZengAmerican Physical SocietyPhysical Review Special Topics. Accelerators and Beams1098-44022015-03-0118303240110.1103/PhysRevSTAB.18.032401Effect of coupling currents on the dynamic inductance during fast transient in superconducting magnetsV. MarinozziM. SorbiG. ManfredaF. BellinaH. BajasG. ChlachidzeWe present electromagnetic models aiming to calculate the variation of the inductance in a magnet due to dynamic effects such as the variation of magnetization or the coupling with eddy currents. The models are studied with special regard to the calculation of the inductance in superconducting magnets which are affected by interfilament coupling currents. The developed models have been compared with experimental data coming from tests of prototype Nb_{3}Sn magnets designed for the new generation of accelerators. This work is relevant for the quench protection study of superconducting magnets: quench is an unwanted event, when part of the magnet becomes resistive; in these cases, the current should be discharged as fast as possible, in order to maintain the resistive zone temperature under a safe limit. The magnet inductance is therefore a relevant term for the description of the current discharge, especially for the high-field new generation superconducting magnets for accelerators, and this work shows how to calculate the correct value during rapid current changes, providing a mean for simulations of the reached temperature.http://doi.org/10.1103/PhysRevSTAB.18.032401
collection DOAJ
language English
format Article
sources DOAJ
author V. Marinozzi
M. Sorbi
G. Manfreda
F. Bellina
H. Bajas
G. Chlachidze
spellingShingle V. Marinozzi
M. Sorbi
G. Manfreda
F. Bellina
H. Bajas
G. Chlachidze
Effect of coupling currents on the dynamic inductance during fast transient in superconducting magnets
Physical Review Special Topics. Accelerators and Beams
author_facet V. Marinozzi
M. Sorbi
G. Manfreda
F. Bellina
H. Bajas
G. Chlachidze
author_sort V. Marinozzi
title Effect of coupling currents on the dynamic inductance during fast transient in superconducting magnets
title_short Effect of coupling currents on the dynamic inductance during fast transient in superconducting magnets
title_full Effect of coupling currents on the dynamic inductance during fast transient in superconducting magnets
title_fullStr Effect of coupling currents on the dynamic inductance during fast transient in superconducting magnets
title_full_unstemmed Effect of coupling currents on the dynamic inductance during fast transient in superconducting magnets
title_sort effect of coupling currents on the dynamic inductance during fast transient in superconducting magnets
publisher American Physical Society
series Physical Review Special Topics. Accelerators and Beams
issn 1098-4402
publishDate 2015-03-01
description We present electromagnetic models aiming to calculate the variation of the inductance in a magnet due to dynamic effects such as the variation of magnetization or the coupling with eddy currents. The models are studied with special regard to the calculation of the inductance in superconducting magnets which are affected by interfilament coupling currents. The developed models have been compared with experimental data coming from tests of prototype Nb_{3}Sn magnets designed for the new generation of accelerators. This work is relevant for the quench protection study of superconducting magnets: quench is an unwanted event, when part of the magnet becomes resistive; in these cases, the current should be discharged as fast as possible, in order to maintain the resistive zone temperature under a safe limit. The magnet inductance is therefore a relevant term for the description of the current discharge, especially for the high-field new generation superconducting magnets for accelerators, and this work shows how to calculate the correct value during rapid current changes, providing a mean for simulations of the reached temperature.
url http://doi.org/10.1103/PhysRevSTAB.18.032401
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