Ключевые слова: HTS, Bi2212, wires round, ac losses, frequency dependence, modeling, numerical analysis
Ключевые слова: HTS, Bi2212, wires, fabrication, precursors, powder processing, microstructure, X-ray diffraction, current-voltage characteristics
Ключевые слова: MRI magnets, design, shielding effects, modeling computational, LTS, Nb3Sn, Rutherford cables, magnetic field distribution, numerical analysis
Ключевые слова: power equipment, FCL resistive, FCL inductive, hybrid systems, HTS, coated conductors, tapes, modeling, impedance, resistance, protective system
Ключевые слова: MRI magnets, coils shim, cylinders, design, magnetic field distribution, numerical analysis
Ключевые слова: length, critical current, experimental results, HTS, Bi2212/Ag, wires round, mechanical treatment, vibration, acoustic emission, wires monofilamentary, wires multifilamentary, fabrication, defects, tensile tests, stress effects, strain effects, mechanical properties, X-ray diffraction, microstructure, density, geometry effects
Zhao Q., Iqbal S., Kozorezov A.G., Baghdadi R., Allmaras J.P*2., Butters B.A., Dane A.E., McCaughan A.N., Toomey E.A., Berggren K.K.
Ключевые слова: measurement technique, switches, switching process, heater, thin films, LTS, NbN
Ключевые слова: cable-in-conduit conductor, joints, prototype, ac losses, frequency dependence, test results, SULTAN, modeling, experimental results, comparison, temperature rise
Ключевые слова: Tokamak, central coils, LTS, Nb3Sn, cable-in-conduit conductor, strands, twist-pitch, design parameters, fabrication, current sharing, measurement setup, SULTAN, mechanical properties, critical characteristics, critical current, strain effects, magnetic field dependence, experimental results, numerical analysis
Ключевые слова: HTS, Bi2212, wires round, cables, measurement technique, critical characteristics, numerical analysis, remanent field, distribution, Hall sensor
Shi Y., Nijhuis A., Jin H., Wu Y., Liu H., Liu F., Qin J., Zhou C., Hao Q., Yagotintsev K.
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