Title :
Flux pinning in Nb-Ti composite superconductors having artificial normal pins with different coherence length
Author :
Hayakawa, Kazumi ; Zhu, Yun ; Miura, Osuke ; Ito, Daisuke
Author_Institution :
Fac. of Eng., Tokyo Metropolitan Univ., Japan
fDate :
3/1/2001 12:00:00 AM
Abstract :
Recently, improvement of the flux pinning properties in several kinds of superconductors has been achieved by introducing artificial pinning centers (APC). The artificial pinning technique is very useful not only to increase critical current densities Jc but also to study the pinning mechanism and its optimization. We have been developing APC composites for the purpose of improvement in magnetic field dependence of Jc for Nb-Ti superconductors. In this study, we investigate the temperature and magnetic field dependence of the pinning force density Fp for Nb-Ti multifilamentary composites having superconducting pins (Nb) and normal conducting pins (Cu, Cu-Ni) with different coherence length ξn. The Fp obtained for all APC wires is larger than that for conventional wire without APC, and the Fp increases as the pin size decreases. In spite of the same APC arrangement in the design stage, Fp for Cu-Ni pin wire is larger than that of Cu pin and also the Fp´s values for the normal pins are smaller than that of superconducting Nb pin wire. Furthermore, Tc for the normal pin wires reduces drastically with reducing pin size, and the peak field of the Fp dose not shift to higher field, while that for Nb pin dose. We evaluate the elementary pinning force fp for these APC wires using the G-L theory taken into account the proximity effect
Keywords :
Ginzburg-Landau theory; coherence length; composite superconductors; critical current density (superconductivity); flux pinning; niobium alloys; proximity effect (superconductivity); titanium alloys; G-L theory; Nb-Ti; artificial normal pins; artificial pinning centers; coherence length; composite superconductors; critical current density; flux pinning; magnetic field dependence; pinning force density; proximity effect; temperature dependence; Critical current density; Flux pinning; Magnetic fields; Multifilamentary superconductors; Niobium; Pins; Proximity effect; Superconducting filaments and wires; Superconductivity; Temperature dependence;
Journal_Title :
Applied Superconductivity, IEEE Transactions on