DocumentCode
1529401
Title
Fabrication of thin-filament Bi-2223/Ag superconducting tapes
Author
Willen, D.W.A. ; Zhu, W. ; Nadi, R. ; Paquette, A. ; Cave, J.R.
Author_Institution
VPTI Hydro-Quebec, Varennes, Que., Canada
Volume
7
Issue
2
fYear
1997
fDate
6/1/1997 12:00:00 AM
Firstpage
2079
Lastpage
2082
Abstract
The use of high-temperature superconductors (HTS) in some power utility applications requires long lengths of conductors with low AC losses and good mechanical properties. This is typically obtained by making multifilamentary wires with thin filaments. In Powder-In-Tube (OPIT) process, the fabrication of thin filaments is limited by the development of non-uniformities due to "sausaging", shear fracture, and tensile fracture in the oxide core. This work analyses factors that control the uniformity of thin filaments of Bi-2223/Ag superconducting tapes. Some simple theoretical considerations have explained the formation of these types of defects in terms of the stress-dependent mechanical properties of the superconducting powder. Experimental results verify that small roller size and low reduction rates during flat rolling (two factors that reduce die hydrostatic stress component in the powder core) improve the uniformity of these filaments. Tapes with core thicknesses of down to 12-18 /spl mu/m have been manufactured, which exhibit values of critical current density of 31-36 kAcm/sup -2/ (at 77 K and 1 /spl mu/V/cm) for heat treatments of 70-200 h.
Keywords
bismuth compounds; calcium compounds; critical current density (superconductivity); heat treatment; high-temperature superconductors; multifilamentary superconductors; powder technology; silver; strontium compounds; superconducting tapes; 12 to 18 mum; 70 to 200 h; 77 K; AC losses; Bi-2223/Ag superconducting tapes; Bi/sub 2/Sr/sub 2/Ca/sub 2/Cu/sub 3/O-Ag; core thickness; critical current density; defects; flat rolling; heat treatment; hydrostatic stress; mechanical properties; multifilamentary wires; powder-in-tube process; reduction rates; roller size; sausaging; shear fracture; stress-dependent mechanical properties; tensile fracture; Conductors; Fabrication; High temperature superconductors; Manufacturing; Mechanical factors; Multifilamentary superconductors; Powders; Stress; Superconducting filaments and wires; Superconducting films;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.621000
Filename
621000
Link To Document