Proximity Effect Magnetization and Energy Loss in Multifilamentary Composites: Influence of Strand Design and Sample Geometry

Flux trapping and cycling energy losses were studied by vibrating sample magnetometry in fine multifilamentary Nb-Ti superconductive strands for which proximity effect coupling between the filaments is significant. Measurements were made to determine the influence of helical twist about the strand a...

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Main Author: Sumption, Mike
Other Authors: Physics
Format: Others
Language:en
Published: Ohio University 2016
Subjects:
QC
Online Access:http://hdl.handle.net/10919/71508
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spelling ndltd-vtechworks.lib.vt.edu-oai-vtechworks.lib.vt.edu-10919-715082020-10-03T06:13:30Z Proximity Effect Magnetization and Energy Loss in Multifilamentary Composites: Influence of Strand Design and Sample Geometry Sumption, Mike Physics NbTi proximity effect magnetization QC Flux trapping and cycling energy losses were studied by vibrating sample magnetometry in fine multifilamentary Nb-Ti superconductive strands for which proximity effect coupling between the filaments is significant. Measurements were made to determine the influence of helical twist about the strand axis as well as sample length for strands experiencing varying levels of proximity effect coupling. The proximity effect strength was varied by investigating strands with a range of filament diameters, as well as by the addition of magnetic impurities to the interfilamentary medium (the matrix) to suppress the proximity effect. Critical currents and fields for the matrix were extracted from the measurements. The reduction of cycling loss1 and magnetization2 previously found was confirmed. Additionally, these measurements were extended to strands where little twist was applied, and the magnetization and cyclic loss were found to saturate. Bean-like models for anisotropic media introduced by Carr1 and later Harada2 were further developed to calculate magnetization and penetration fields in these strands over a large range of twist pitch values. A calculation of magnetic hysteresis loops was also made for short strand samples. These models provide a good qualitative understanding of the observed behavior and lead to useful predictions for applications. Department of Energy 2016-06-27T19:03:22Z 2016-06-27T19:03:22Z 1992 1992-03-12 Dissertation eprint:442 http://hdl.handle.net/10919/71508 en In Copyright http://rightsstatements.org/vocab/InC/1.0/ 198 pages application/pdf application/pdf Ohio University
collection NDLTD
language en
format Others
sources NDLTD
topic NbTi
proximity effect
magnetization
QC
spellingShingle NbTi
proximity effect
magnetization
QC
Sumption, Mike
Proximity Effect Magnetization and Energy Loss in Multifilamentary Composites: Influence of Strand Design and Sample Geometry
description Flux trapping and cycling energy losses were studied by vibrating sample magnetometry in fine multifilamentary Nb-Ti superconductive strands for which proximity effect coupling between the filaments is significant. Measurements were made to determine the influence of helical twist about the strand axis as well as sample length for strands experiencing varying levels of proximity effect coupling. The proximity effect strength was varied by investigating strands with a range of filament diameters, as well as by the addition of magnetic impurities to the interfilamentary medium (the matrix) to suppress the proximity effect. Critical currents and fields for the matrix were extracted from the measurements. The reduction of cycling loss1 and magnetization2 previously found was confirmed. Additionally, these measurements were extended to strands where little twist was applied, and the magnetization and cyclic loss were found to saturate. Bean-like models for anisotropic media introduced by Carr1 and later Harada2 were further developed to calculate magnetization and penetration fields in these strands over a large range of twist pitch values. A calculation of magnetic hysteresis loops was also made for short strand samples. These models provide a good qualitative understanding of the observed behavior and lead to useful predictions for applications. === Department of Energy
author2 Physics
author_facet Physics
Sumption, Mike
author Sumption, Mike
author_sort Sumption, Mike
title Proximity Effect Magnetization and Energy Loss in Multifilamentary Composites: Influence of Strand Design and Sample Geometry
title_short Proximity Effect Magnetization and Energy Loss in Multifilamentary Composites: Influence of Strand Design and Sample Geometry
title_full Proximity Effect Magnetization and Energy Loss in Multifilamentary Composites: Influence of Strand Design and Sample Geometry
title_fullStr Proximity Effect Magnetization and Energy Loss in Multifilamentary Composites: Influence of Strand Design and Sample Geometry
title_full_unstemmed Proximity Effect Magnetization and Energy Loss in Multifilamentary Composites: Influence of Strand Design and Sample Geometry
title_sort proximity effect magnetization and energy loss in multifilamentary composites: influence of strand design and sample geometry
publisher Ohio University
publishDate 2016
url http://hdl.handle.net/10919/71508
work_keys_str_mv AT sumptionmike proximityeffectmagnetizationandenergylossinmultifilamentarycompositesinfluenceofstranddesignandsamplegeometry
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