Author :
Zanino, R. ; Boso, D.P. ; Lefik, M. ; Ribani, P.L. ; Richard, L. Savoldi ; Schrefler, B.A.
Abstract :
The modeling of the effects of bending on single strand DC performance (IC, n index) is presented for a bronze-route strand subjected to the same loading conditions as in an experiment performed at JAEA Naka, Japan [Y. Nunoya, , IEEE TAS 14 (2004) 1468-1472]. The strand is discretized in strand elements (SE) representing groups of twisted filaments in the bronze matrix, and in portions of the outer Cu annulus, electro-magnetically coupled in the THELMA code. The 3-D strain map in the filament region is computed with a newly developed, detailed thermo-mechanical model accounting for non-linear, temperature dependent material characteristics. With respect to our previous analysis [P.L.Ribani, , IEEE TAS 16 (2006) 860-863] several new updated ingredients, besides the new thermo-mechanical model, are used here, including more accurate thermal and mechanical properties for the materials, a jacket-like model for the outer Cu layer, IC and n index (interpolative) scaling from Durham University. The simulation results show an improved agreement with the experiments, in the degradation of the single-strand performance due to bending.
Keywords :
bending; critical current density (superconductivity); fusion reactor materials; multifilamentary superconductors; niobium alloys; tin alloys; type II superconductors; 3-D strain map; Durham University; ITER-relevant Nb3Sn strand performance degradation; JAEA Naka; Japan; Nb3Sn; THELMA code; bending effects analysis; bronze-route strand; fusion reactors; interpolative scaling; nonlinear material characteristics; outer copper layer; single-strand performance; strand critical current; superconducting filaments; superconducting wires; temperature dependent material characteristics; thermo-mechanical model; twisted filaments; Fusion reactors; ITER; modeling; superconducting filaments and wires;