DocumentCode :
1761622
Title :
New Pinning Strategies for Second-Generation Wires
Author :
Solovyov, V.F. ; Qiang Li ; Rupich, M. ; Sathyamurthy, S. ; Xiaoping Li
Author_Institution :
Brookhaven Nat. Lab., Upton, NY, USA
Volume :
23
Issue :
3
fYear :
2013
fDate :
41426
Firstpage :
6600905
Lastpage :
6600905
Abstract :
In the last several years, second-generation (2G) superconducting wires have been considered for applications in rotating machines operating in the 20-40 K temperature range in 1-3 T magnetic fields. Here, we outline several novel strategies for improving the low-temperature performance of second-generation wires by utilizing the in-plane strain of thick YBCO layers manufactured by the reel-to-reel metal-organic deposition (MOD) method. First, we show that he strain-induced pinning mechanism analysis, based on the Eshelby model of the elastically-strained composites, predicts that small YBCO grain size is a critical component of a strong pinning architecture. Second, we describe how the in-plane strain can be controlled by processing parameters. Systematic changes of the in-plane structure and YBCO grain size are mapped with respect to the YBCO stability line and the Cu2O-CuO line on the Bormann-Hammond diagram. It is demonstrated that the optimum critical current density is the result of a trade-off between YBCO grain coupling and the strain-induced pinning.
Keywords :
barium compounds; critical current density (superconductivity); elasticity; electric machines; flux pinning; grain size; high-temperature superconductors; yttrium compounds; Bormann-Hammond diagram; Eshelby model; YBCO; critical current density; elastically-strained composites; grain size; in-plane strain; in-plane structure; low-temperature performance; magnetic flux density 1 T to 3 T; pinning strategies; processing parameters; reel-to-reel metal-organic deposition; rotating machines; second-generation superconducting wires; strain-induced pinning mechanism; temperature 20 K to 40 K; thick YBCO layers; Films; Generators; Grain size; Strain; Wires; Yttrium barium copper oxide; Coated conductors; critical currents; flux pinning; high temperature superconductors; wind energy; yttrium barium copper oxide;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2012.2234322
Filename :
6387293
Link To Document :
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