Title :
Study of the Temperature and Field Dependence of the Critical Currents in Nb-Ti Strands for the ITER Poloidal Field Magnet System
Author :
Karasev, Yu.V. ; Pantsyrny, V.I. ; Polikarpova, M.V. ; Lukianov, P.A. ; Gubkin, I.N. ; Abdyukhanov, I.M. ; Baumgartner, Thomas ; Prokopec, R. ; Eisterer, Michael ; Weber, Harald W.
Author_Institution :
Bochvar Inst. (VNIINM), Moscow, Russia
Abstract :
Commercial multifilamentary Nb-Ti strands produced by the Russian Federation DA for the ITER poloidal field coils PF1 and PF6 were characterized regarding the critical current versus magnetic field dependence from 2 to 10 T over a wide range of temperatures from 2.5 to 7 K. The data were collected on several Nb-Ti strands at the stage before production and after 30% of the production for the ITER program. Jc(B, T) fits were determined using parameterization models with single pinning and two-pinning components. The validity and limitation of these estimations will be discussed. The pinning force curves are presented in the temperature range from 2.5 to 4.2 K and indicate a shift of the pinning force peak to lower fields with increasing temperature. The current sharing temperature Tcs at the operating current (33 A) and field (6.4 T) was determined from both parameterization models. The results of Tcs show good reproducibility for each set of Nb-Ti strands. The good agreement between experimental and fit results over very wide temperature ranges can be used for the analysis of experimental data on the PF conductor performance and for the design of future superconducting magnets.
Keywords :
critical currents; flux pinning; multifilamentary superconductors; niobium alloys; superconducting coils; titanium alloys; ITER poloidal field coils; ITER poloidal field magnet system; ITER program; NbTi; conductor performance; critical currents; current 33 A; current sharing temperature; magnetic field dependence; multifilamentary Nb-Ti strands; operating current; operating field; parameterization models; pinning force curves; pinning force peak shift; single pinning component; superconducting magnet design; temperature 2.5 K to 7 K; temperature dependence; two-pinning component; Critical current density (superconductivity); Current measurement; Plasma temperature; Production; Superconducting magnets; Temperature distribution; Temperature measurement; Critical current density; current sharing temperature; magnetic field; superconducting NbTi strands;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2013.2280646