DocumentCode
1477761
Title
Properties of a prototype Bi-based HTS composite with a high resistivity sheath for resistive fault current limiting applications
Author
Diehl, Robert C. ; Fleshler, Steven ; Mason, Ralph ; Christopherson, Craig ; DeMoranville, Ken ; Harnois, Richard ; Otto, Alex ; Riley, Gilbert N., Jr. ; Serres, Etienne ; Willis, Jeffrey O. ; Boenig, Heinrich J. ; Schillig, Josef B.
Author_Institution
American Superconductor Corp., Westborough, MA, USA
Volume
11
Issue
1
fYear
2001
fDate
3/1/2001 12:00:00 AM
Firstpage
3265
Lastpage
3268
Abstract
Prototype Bi-2223 based composite conductors have been fabricated to provide inherent passive fault current limiting functionality in devices. An HTS insert strand possessing a high resistivity sheath (HRS) was laminated to two metallic strips to provide additional capacity to absorb the heat generated during a fault. Sheath resistivities up to 45 times that of pure Ag were achieved. We summarize the electrical response of 10 to 100 cm straight sections of conductor to pulsed dc and ac currents several times the critical current. DC pulsed I-V characteristics have been obtained over 7 to 8 orders of magnitude of voltage. For electric field levels around 10 V/m, the I-V curves demonstrate the advantage of the HRS conductor in facilitating fault current limiting over the conventional Ag-sheathed Bi-2223 approach. The recovery time for ac faults of 10 Vim was mapped out for various fault hold times. Instantaneous operational recovery was observed for fault hold times up to 3 seconds
Keywords
bismuth compounds; calcium compounds; composite superconductors; fault current limiters; high-temperature superconductors; multifilamentary superconductors; strontium compounds; superconducting devices; 10 to 100 cm; Bi-2223 based composite conductors; Bi2Sr2Ca2Cu3O10 ; DC pulsed I-V characteristics; electric field levels; electrical response; fault hold times; high resistivity sheath; high temperature superconductor; instantaneous operational recovery; prototype Bi-based HTS composite; resistive fault current limiting applications; Conducting materials; Conductivity; Conductors; Critical current; Electric resistance; Fault currents; High temperature superconductors; Prototypes; Superconducting materials; Superconductivity;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.919759
Filename
919759
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