DocumentCode :
1314352
Title :
Material issues in the 100 T non-destructive magnet
Author :
Han, Kwangseok ; Baca, A. ; Coe, H. ; Embury, J. ; Kihara, K. ; Lesch, B. ; Li, Luoqing ; Schillig, J. ; Sims, J. ; van Sciver, S. ; Schneider-Muntau, H.J.
Author_Institution :
NHMFL, Tallahassee, FL, USA
Volume :
10
Issue :
1
fYear :
2000
fDate :
3/1/2000 12:00:00 AM
Firstpage :
1277
Lastpage :
1280
Abstract :
The effort in materials program related to the first 100 T non destructive (100 T ND) magnet has been concentrated on four areas: (a) development of the fabrication routes for various conductive wires in collaboration with other institutes and industrial partners, (b) investigation of the properties of a variety of candidate high strength high conductivity materials, (c) selection of the reinforcement materials for the coils and development of fabrication routes for these materials, (d) characterization of the commercially available insulation materials. This paper deals with the conductor issues. The properties and the microstructure of Cu-Ag, UNS-C157XX (Cu-Al/sub 2/O/sub 3/), Cu+Stainless Steels (SS) and Cu-Nb composites have been investigated for their potential use as conductors in pulsed high field magnets. These conductors demonstrate a combination of good conductivity, high strength, adequate workability, and the availability of final section sizes needed for the magnet design. Examination of the initial portion of the stress strain curve of cold worked conductors reveals that the internal stresses developed during the fabrication influence the mechanical response of the materials. Thus, the properties of the drawn materials have been measured as a function of cyclic loading and thermal annealing cycles, and the cyclic properties are related to the internal stresses.
Keywords :
annealing; composite materials; electromagnets; internal stresses; stress-strain relations; 100 T; Cu-Ag; Cu-Al/sub 2/O/sub 3/; Cu-Nb; cold worked conductors; conductive wires; cyclic loading; high strength high conductivity materials; insulation materials; internal stresses; microstructure; nondestructive magnet; pulsed high field magnets; reinforcement materials; stress strain curve; thermal annealing; Collaboration; Conducting materials; Conductivity; Fabrication; Internal stresses; Magnetic materials; Magnetic properties; Neodymium; Thermal stresses; Wires;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/77.828468
Filename :
828468
Link To Document :
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