Title :
Critical current limiting factors of hot isostatically pressed (HIPed) PbMo/sub 6/S/sub 8/ wires
Author :
Seeber, B. ; Erbuke, L. ; Schroeter, V. ; Perenboom, J.A.A. ; Grill, R.
Author_Institution :
Inst. of Appl. Phys., Geneva Univ., Switzerland
fDate :
6/1/1995 12:00:00 AM
Abstract :
PbMo/sub 6/S/sub 8/ wires with a molybdenum barrier and a stainless steel matrix were hot isostatically pressed (HIP) at 990/spl deg/C and 1225/spl deg/C for 4 hours at 110 MPa. The critical current density, its distribution, as well as the ac-susceptibility were investigated. The higher the applied HIP temperature, the better the critical current density becomes. A comparison of inductive T/sub c/ transitions suggests that HIPing is able to considerably reduce the width of the transition. In addition, at 1225/spl deg/C, the T/sub c/ onset is shifted from 12.4 K to 14.2 K. The high field behavior of J/sub c/ strongly depends on the effective upper critical field which is essentially determined by grain boundaries. In a degraded wire sample, a qualitative correlation between effective upper critical field and the width of the inductive transition was found. This knowledge should allow to overcome the apparent limitation of J/sub c/ at high fields (2/spl times/10/sup 8/ Am/sup -2/ and 3/spl times/10/sup 8/ Am/sup -2/ at 20 T, 4.2 K and 1.8 K, respectively).<>
Keywords :
critical current density (superconductivity); grain boundaries; hot pressing; lead compounds; magnetic susceptibility; molybdenum compounds; superconducting critical field; superconducting transition temperature; type II superconductors; 1.8 K; 110 MPa; 12.4 K; 1225 degC; 14.2 K; 20 T; 4 hour; 4.2 K; 990 degC; AC-susceptibility; Chevrel phase; Mo barrier; PbMo/sub 6/S/sub 8/; applied HIP temperature; critical current density; critical current limiting factors; degraded wire sample; effective upper critical field; grain boundaries; high field behavior; hot isostatically pressed PbMo/sub 6/S/sub 8/ wires; inductive transition; inductive transition temperature; stainless steel matrix; Critical current; Critical current density; Hip; Magnetic materials; Manufacturing; Powders; Steel; Superconducting filaments and wires; Superconducting magnets; Temperature;
Journal_Title :
Applied Superconductivity, IEEE Transactions on