Title :
Microstructures and flux pinning properties in Nb/sub 3/Al tapes by ohmic-heating method
Author :
Harada, N. ; Taira, H. ; Osaki, K. ; Tada, N. ; Iwaki, G. ; Watanabe, K.
Author_Institution :
Dept. of Electr. & Electron. Eng., Yamaguchi Univ., Japan
fDate :
6/1/1999 12:00:00 AM
Abstract :
Two kinds of Nb/sub 3/Al superconducting tapes with monocores in Nb sheaths have been fabricated from either Nb/Nb/sub 2/Al(sigma-phase) powders or Nb/Al powders. Tape samples 3 mm wide, 0.3 mm thick, and 40-50 mm long are ohmically-heated at maximum temperatures which range from 1650 to 2000/spl deg/C in vacuum, to obtain the stoichiometric composition of the A15 phase. Critical currents up to 23 T were measured by a four probe method. Microstructures were studied using an X-ray diffractometer, TEM, and EDX. The Nb/sigma powder sample showed a maximum T/sub c/ at an ohmically-heated temperature 200/spl deg/C lower than the Nb/Al powder sample. Production of A15 is influenced by the differences in diffusion length related to different starting materials. Nb/sub 3/Al grain sizes were 1-2 /spl mu/m in both the Nb/Al sample and the Nb/sigma sample. Also, /spl sigma/-phase was observed only in Nb/Al sample. The pinning force densities in the Nb/Al sample and the Nb/sigma sample showed a large peak at high magnetic field (above 20 T), and a peak at low magnetic field, respectively. From the relation between microstructure and flux pinning properties, it is supposed that the /spl sigma/-phase acts as an effective pinning center at high magnetic fields in Nb/sub 3/Al.
Keywords :
aluminium alloys; critical current density (superconductivity); crystal microstructure; flux pinning; grain size; niobium alloys; superconducting tapes; type II superconductors; 0.3 mm; 1 to 2 mum; 1650 to 2000 C; 3 mm; 40 to 50 mm; EDX; Nb/sub 3/Al; Nb/sub 3/Al tapes; TEM; X-ray diffractometer; flux pinning properties; microstructures; ohmic-heating method; pinning force densities; stoichiometric composition; Critical current; Current measurement; Flux pinning; Magnetic fields; Microstructure; Niobium; Powders; Probes; Superconducting films; Temperature distribution;
Journal_Title :
Applied Superconductivity, IEEE Transactions on