Title :
Progress in Reducing AC Losses of Bi2223 Tapes with Interfilamentary Resistive Barriers
Author :
Inada, Ryoji ; Okumura, Yasuhiro ; Oota, Akio ; Li, Chengshan ; Zhang, Pingxiang
Author_Institution :
Toyohashi Univ. of Technol., Toyohashi, Japan
fDate :
6/1/2011 12:00:00 AM
Abstract :
This paper presents our recent progress for the development of low-AC loss Bi2223 tapes with interfilamentary oxide barriers. For the compatibility with Bi2223 phase formation during sintering, SrZrO3 was selected as barrier materials. Moreover, small amount of Bi2212 was mixed with SrZrO3 to improve its ductility for cold working. Although some breakages of barrier layers still existed, the effective transverse resistivity was approximately 10 times higher than a tape with pure Ag matrix. By controlling barrier thickness, reducing a tape width below 3 mm and twisting the filaments with its length below 5 mm , coupling frequency fc attained to 260 Hz in an AC perpendicular transverse field. Critical current densities Jc of our twisted barrier tapes were ranged in 12-15 kA/cm2 at 77 K and self-field, which was 25-30 % lower than non-twisted one (=18 kA/cm2). In our knowledge, this is the first report to achieve both Jc >; 12 kA/cm2 and fc 250 Hz simultaneously in a single Bi2223 tapes. Our barrier tapes showed 60-70% lower perpendicular field losses than a conventional 4 mm-width tape with fully coupled filaments at 50 mT and 50 Hz. These results are promising for remarkable improvement in AC performance for Bi2223 tapes in future.
Keywords :
bismuth compounds; calcium compounds; cold working; critical current density (superconductivity); ductility; electrical resistivity; high-temperature superconductors; lead compounds; mixing; multifilamentary superconductors; sintering; strontium compounds; superconducting tapes; (BiPb)2Sr2Ca2Cu3Ox; AC performance; AC perpendicular transverse field; Bi2223 phase formation; SrZrO3; barrier layer breakages; barrier materials; barrier thickness; cold working; coupling frequency; critical current densities; ductility; effective transverse resistivity; frequency 260 Hz; interfilamentary oxide barriers; interfilamentary resistive barriers; low-AC loss Bi2223 tapes; mixing; perpendicular field losses; pure Ag matrix; self-field; single Bi2223 tapes; sintering; tape width; temperature 77 K; twisted barrier tapes; Conductivity; Couplings; Critical current density; Current measurement; Loss measurement; Superconducting films; Superconducting magnets; AC loss; Bi2223 tapes; coupling frequency; filament twisting; interfilamentary barriers;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2010.2078433