Wg. Wang et al., THE EFFECT OF MECHANICAL DEFORMATION ON SILVER-CORE INTERFACE AND CRITICAL-CURRENT DENSITY IN AG-BI-2223 SINGLEFILAMENT AND MULTIFILAMENT TAPES, Superconductor science and technology, 9(10), 1996, pp. 875-880
Ag sheathed Bi-2223 tapes were prepared by the powder-in-tube method.
A smooth Ag-oxide interface was obtained by decreasing the number of a
nnealing steps, annealing temperature and time and wire size prior to
flat rolling and by varying reduction per pass during flat rolling. Fo
r fabrication of multifilamentary tapes, the fill geometry and fill nu
mber are controlled to accord with deformation symmetry and homogeneit
y. The particle size of precursor powder was found to have more effect
on 'sausaging' in multifilamentary tape than monofilamentary tape. Th
e difference in the deformation resistance between Ag sheath and oxide
core was considered to explain and predict the 'sausaging' effect. A
higher degree of deformation is more beneficial for achieving higher J
(c) in the tapes made by square rolled wire than the tapes made by the
conventional drawing method. However, the square rolling method is no
t suitable for fabricating multifilamentary tape because strong inhomo
geneity of deformation is introduced by this method. Tapes with a 0.07
mm thickness can be made using flat rolling without any 'sausaging' e
ffect. In the case of square rolled wire, the J(c0) reaches 4.2 x 10(4
) A cm(-2) with J(c)(1 T, H parallel to ab plane)/J(c0) of about 20% a
t 77 K for the pressed tapes while J(c0) values of 3.5 x 10(4) A cm(-2
) and 2.5 x 10(4) A cm(-2) are achieved in rolled single- and 16-filam
ent tapes respectively. More reproducible results with a J(c0) in the
range of (3-3.3) x 10(4) A cm(-2) for pressed tapes and (2.65-2.8) x 1
0(4) A cm(-2) for rolled tapes are achieved by conventional drawing ap
proach in 19-filament tapes. Also, high J(c)(1 T, H parallel to ab pla
ne)/J(c0) values of 21 and 18% were obtained for pressed and rolled 19
-filament tape, respectively.