Title :
Critical Current of Mechanically Loaded Nb3Sn Superconducting Multi-Strand Cable
Author :
Seo, K. ; Nishimura, A. ; Hishinuma, Y. ; Nakamura, K. ; Takao, T. ; Nishijima, G. ; Watanabe, K. ; Katagiri, K.
Author_Institution :
Nat. Inst. for Fusion Sci., Toki
fDate :
6/1/2007 12:00:00 AM
Abstract :
We developed a novel critical current and stability experimental setup utilizing a closed electric circuit with a multi-stand superconducting cable. The feature of this setup is transverse mechanical loading implied to the multi-strand cable in the transverse direction. It was reported that Lorentz force caused degradation of critical current in the ITER-TFMC conductor. Furthermore, these phenomena were only observed in the ITER full size conductors with large Lorentz forces under high magnetic field. The advantage of our setup is a critical current measurement with comparable mechanical stress under high magnetic field. Employing an inductive critical current measurement technique, we conducted the experiment with transport current of around 10 kA without any power supply nor current lead. As experimental results, we observed significant degradation due to compressive stress of around 30 MPa. This degradation was found irreversible, when it was unloaded.
Keywords :
critical current density (superconductivity); niobium compounds; superconducting cables; superconducting critical field; ITER-TFMC conductor; Lorentz force; Nb3Sn - Binary; critical current; electric circuit; magnetic field; mechanically loaded superconducting cable; superconducting multi-strand cable; transverse mechanical loading; Circuit stability; Conductors; Critical current; Current measurement; Degradation; Lorentz covariance; Magnetic field measurement; Mechanical cables; Niobium; Superconducting cables; ${rm Nb}_{3}{rm Sn}$; CICC; critical current; superconductor; transverse load;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2007.899215