DocumentCode
1481342
Title
Current limitation with bulk Y-Ba-Cu-O
Author
Tixador, P. ; Porcar, L. ; Floch, E. ; Buzon, D. ; Isfort, D. ; Bourgault, D. ; Chaud, X. ; Tournier, R.
Author_Institution
Centre de Recherches sur les Tres Basses Temp., CNRS, Grenoble, France
Volume
11
Issue
1
fYear
2001
fDate
3/1/2001 12:00:00 AM
Firstpage
2034
Lastpage
2037
Abstract
The fault current limiter is a very attractive device for electric networks. Meander pattern conductors cut from bulk melt textured YBCO were studied for this application. The meanders are put in series and/or in parallel to match the required current and voltage. The YBCO materials are attractive because they show a very effective limitation with a relative low volume (high engineering current density and normal state resistivity). However, they are sensitive to hot spots. To avoid these destructive hot spots the operating temperature is chosen very close to the critical temperature (above 90 K). This temperature range is reached using a pressurised liquid nitrogen bath. Working close to Tc has two major advantages. The first is reduced values of Jc which limit the power dissipation. The Jc can be matched by changing the pressure on the nitrogen bath. The second is that the proximity of the normal state is favourable for homogeneous quenches along the whole meander as it can be experimentally recorded. Results obtained on single meanders and on the whole assembly are reported under steady state operation as well as during current limitation. Forty three meanders in series limited the current to 740 A (11 000 A unlimited value) under 1 kV
Keywords
barium compounds; critical current density (superconductivity); fault current limiters; high-temperature superconductors; superconducting device testing; yttrium compounds; 1 kV; 100 A; 740 A; YBaCuO; bulk Y-Ba-Cu-O; bulk melt textured YBCO; current density; current limitation; fault current limiter; homogeneous quenches; hot spots avoidance; meander pattern conductors; normal state resistivity; operating temperature; power dissipation limitation; pressurised liquid nitrogen bath; Conducting materials; Conductivity; Current density; Fault current limiters; Nitrogen; Power dissipation; Temperature distribution; Temperature sensors; Voltage; Yttrium barium copper oxide;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.920254
Filename
920254
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