Ключевые слова: cable-in-conduit conductor, LTS, strands, joints, coils toroidal, NbTi, power equipment
Zenobio A.D., Chiarelli S., Turtu S., Muzzi L., Corato V., Marzi G.D., Corte A.D., Zignani C.F., Messina G., Napolitano M., Affinito L.
Ключевые слова: LTS, Nb3Sn, strands, fusion magnets, bronze process, coils toroidal, ITER, critical current density, current-voltage characteristics, current-voltage characteristics, n-value, microstructure, grain size, internal tin method, review, power equipment, critical caracteristics, fabrication, high field magnets
Kikuchi A., Iijima Y., Tsuchiya K., Koizumi N., Banno N., Takeuchi T., Kitaguchi H., Tagawa K., Mitsuda C., Nakagawa K., Okuno K.*41
Ключевые слова: LTS, Nb3Al, strands, fabrication, reel-to-reel process, critical current density, cable-in-conduit conductor, magnetization curves, Jc/B curves, quench, coils solenoidal, Rutherford cables, joints, winding techniques, review, power equipment, critical caracteristics, magnetic properties, status
Ключевые слова: LTS, Nb3Sn, Rutherford cables, strands, RRR parameter, experimental results, power equipment
Barzi E., Yamada R., Zlobin A.V., Zhang Y., Hong S., Turrioni D., Field M., Parrell J., Alsharo'a M.
Ключевые слова: LTS, Nb3Sn, strands, deformation, resistivity, RRP process, stability, mechanical treatment, geometry effects, experimental results, fabrication
Ключевые слова: LTS, Nb3Sn, strands, bending process, experimental results, mechanical properties, numerical analysis, critical current, critical caracteristics
Ключевые слова: LTS, Nb3Sn, fabrication, internal tin method, phase formation, heat treatment, strands
Ключевые слова: LTS, Nb3Sn, ITER, strands, mechanical properties, strain effects, experimental results
Ключевые слова: ITER, LTS, Nb3Sn, strands, dc performance, current distribution, experimental results, modeling
Ключевые слова: LTS, Nb3Sn, strands, bending process, critical current, n-value, numerical analysis, cable-in-conduit conductor, ITER, power equipment, critical caracteristics
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