Title :
Critical current densities and magnetic hysteresis losses in submicron filament bronze-processed Nb3Sn wires
Author :
Kamata, K. ; Sakai, S. ; Tachikawa, K. ; Taniguchi, T. ; Ajioka, T. ; Hatakeyama, H.
Author_Institution :
Hitachi Cable Ltd., Tokyo, Japan
fDate :
3/1/1991 12:00:00 AM
Abstract :
Submicron-filament bronze-processed multifilamentary Nb3Sn wires with a Cu-5at.%Sn matrix and Nb or Nb alloy cores have been fabricated. The Nb alloy cores each contained 1-at.% Zr, Ti, Hf, or Ta. Among the peripheral-Cu-stabilizer-type wires, the Nb-1Ta core wire showed the highest non-Cu area critical current density, J c of 3×104 A/cm2 at 12 T after all optimum heat treatment, in spite of its relatively low Sn concentration in the matrix. The deformation of Nb cores into ribbonlike shapes was apparently suppressed by the 1-at.% addition of Ti, Hf or Ta. The values of Jc per unit magnetic hysteresis loss for the Ti, Hf, and Ta alloyed Nb core wires have been evaluated to be higher than that for the pure Nb core wire. Central-Cu-stabilizer-type wires with the same alloy cores were also prepared. The Nb-1Ta core wire again showed the highest Jc´s. The Jc ´s for a Nb core wire increased further because of heat treating after Sn plating. It is shown that the hysteresis loss also decreases when the wire is heat treated after Sn plating, as a result of the increase in matrix resistivity. Thus, the bronze-process-based external Sn diffusion method using Nb alloy cores shows promise for the development of high-current-density and very-low-AC-loss Nb3Sn wire
Keywords :
composite superconductors; critical current density (superconductivity); losses; magnetic hysteresis; niobium alloys; tin alloys; type II superconductors; Cu-Sn matrix; Nb alloy cores; Nb core; Nb-Hf; Nb-Ta; Nb-Ti; Nb-Zr; Nb3Sn; Nb3Sn-CuSn; bronze-processed Nb3Sn wires; critical current density; external Sn diffusion method; low AC loss wire; magnetic hysteresis losses; multifilamentary wires; optimum heat treatment; submicron filament; Critical current density; Hafnium; Magnetic cores; Magnetic hysteresis; Magnetic losses; Niobium alloys; Tin; Titanium alloys; Wire; Zirconium;
Journal_Title :
Magnetics, IEEE Transactions on