Title :
Performance Test of Superconducting Wires Subject to Heavy Deformations
Author :
Freda, R. ; Chiarelli, S. ; Corato, Valentina ; della Corte, Antonio ; De Marzi, Gianluca ; Di Zenobio, A. ; Formichetti, A. ; Muzzi, Luigi ; Rufoloni, Alessandro ; Viola, R.
Author_Institution :
Unita Tec. Fusione, ENEA, Frascati, Italy
Abstract :
ENEA is currently involved in the manufacture of cable-in-conduit conductors (CICCs) for the magnets of the nuclear fusion facilities ITER and JT-60SA, as well as for laboratory superconducting magnets based on CICCs, as those of the NAFASSY and of the Nijmegen-High Field Magnetic Laboratory facilities. The acceptance tests of such industrial productions include the destructive examination of both cable and conductor samples. As widely experienced, during the manufacturing processes, deformations of both copper and superconducting wires may occur due to the large compaction forces involved to which the cabled structure is subjected. In order to evaluate the maximum extent to which typical deformations can be accepted at the level of the single wire within a cable, the characterization of wires artificially deformed has been carried out in terms of mechanical, structural, and electromagnetic properties. In addition, some relevant wire sections extracted from the destructive examination samples have been also characterized. Experimental results demonstrate the negligible influence on the overall conductor performances to be expected for the typical deformations that occur during cable and conductor manufacture.
Keywords :
copper; deformation; manufacturing processes; superconducting cables; superconducting magnets; wires (electric); Cu; ENEA; ITER; JT-60SA; NAFASSY; Nijmegen-high field magnetic laboratory facilities; acceptance testing; artificial deformation; cable manufacturing; cable-in-conduit conductors; cabled structure; compaction forces; conductor manufacturing; conductor performances; copper; destructive examination samples; electromagnetic properties; laboratory superconducting magnets; mechanical properties; nuclear fusion facilities; performance testing; structural properties; superconducting wires; typical deformations; Conductors; Critical current density (superconductivity); Magnetic field measurement; Niobium-tin; Superconducting cables; Superconducting magnets; Wires; $hbox{Nb}_{3}hbox{Sn}$; AC losses; Cable-in-Conduit Conductor; Critical Current; Nb3Sn.; NbTi; Superconducting filaments and wires; cable-in-conduit conductor; critical current; superconducting filaments and wires;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2364402