Title :
Temperature and magnetic field dependence of the critical current density for a mass-produced Nb3Al multifilamentary strand fabricated by a jelly-roll method [for ITER]
Author :
Takahashi, Yoshikazu ; Koizumi, Norikiyo ; Nunoya, Yoshihiko ; Takaya, Yoshiyuki ; Tsuji, Hiroshi
Author_Institution :
Naka Joint Work Site, ITER Int. Team, Ibaraki, Japan
fDate :
6/1/2002 12:00:00 AM
Abstract :
JAERI has been developing jelly-roll processed multifilamentary Nb3Al-Cu strands for the toroidal field (TF) coils of fusion tokamak machines since 1986, in cooperation with Sumitomo Electric Industries. One ton of mass-produced strands were successfully manufactured for the 13 T-46 kA Nb3 Al insert which will be tested in the ITER Central Solenoid model coil. The critical current of the Nb3Al strand developed for the ITER project was measured in temperatures from 4.2 to 15 K and in applied magnetic fields up to 16 T. An empirical equation for the critical current density Was obtained by using these data and the pinning force scaling method. The obtained equation is useful in evaluating the performance of the full-size conductor and in establishing the optimum design criteria for the conductor in fusion machines. In this work, we did not take into account the influence of mechanical strain on the strand. IC measurement of the strands under mechanical strain will be carried out and an expression for JC with the strain will be completed in the next phase.
Keywords :
Tokamak devices; aluminium alloys; critical current density (superconductivity); fusion reactor design; multifilamentary superconductors; niobium alloys; superconducting coils; winding (process); 13 T; 16 T; 4.2 to 15 K; 46 kA; ITER Central Solenoid model coil; Nb3Al; critical current density; critical temperature; empirical equation; full-size conductor; fusion tokamak machines; jelly-roll method; magnetic field dependence; mass-produced multifilamentary strand; normalized flux pinning forces; optimum design criteria; pinning force scaling method; temperature dependence; toroidal field coils; Coils; Critical current density; Force measurement; Magnetic field measurement; Magnetic fields; Niobium; Strain measurement; Temperature dependence; Temperature measurement; Toroidal magnetic fields;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2002.1020340