Ключевые слова: pnictides, wires multifilamentary, fabrication, PIT process, hot isostatic pressing, mechanical treatment, grain structure, critical current, current-voltage characteristics, magnetic field dependence, transport currents, n-value, susceptibility, magnetization, resistive transition, upper critical fields, irreversibility fields, X-ray diffraction, microstructure, experimental results
Ключевые слова: fusion magnets, history, LTS, NbTi, wires multifilamentary, Nb3Sn, cable-in-conduit conductor, ITER, status, HTS, hybrid systems, review
Ключевые слова: HTS, YBCO, coated conductors, thin films, stripes, LTS, Nb, patterning, substrates, wires multifilamentary, filaments, substrate SrTiO3, microstructure
Ключевые слова: MgB2, wires multifilamentary, ac losses, numerical analysis
Twin A., Melhem Z., Speller S., Grovenor C., Kim I., Ball S., Mousavi T., Zagura P., Follows F., Barker C.
Ключевые слова: HTS, Bi2212/Ag, wires multifilamentary, wires round, coils, joints superconducting , fabrication, microstructure
Ключевые слова: pnictides, wires round, wires multifilamentary, fabrication, PIT process, mechanical properties, deformation, X-ray diffraction, microstructure, grain structure, critical caracteristics, current-voltage characteristics, critical current density, n-value, magnetic field dependence, susceptibility, resistivity, temperature dependence, resistive transition, Jc/B curves, pinning force, experimental results
Yoshida Y., Awaji S., Ito T., Ishida S., Tamegai T., Kito H., Eisaki H., Kajitani H., Pyon S., Sakagami R.
Ключевые слова: MgB2, wires multifilamentary, filaments, X-ray tomography, experimental results
Ключевые слова: pnictides, wires round, wires monofilamentary, wires multifilamentary, PIT process, hot isostatic pressing, mechanical properties, bending process, magnets, fabrication, design parameters, critical current distribution, magnetic field dependence, current-voltage characteristics, X-ray tomography
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