Mitigation of Critical Current Degradation in Mechanically Loaded Nb3Sn Superconducting Multi-Strand Cables by Ice Molding
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概要
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We have developed a novel critical current and stability measurement experimental setup, which utilizes a closed electric circuit with a multi-strand superconducting cable. The feature of this setup is mechanical loading applied to the multi-strand cable in the transverse direction. It was reported that Lorentz forces caused degradation in the critical current of the ITER-TFMC conductor. Furthermore, these phenomena were mainly observed in the ITER full-size conductors with large Lorentz forces under high magnetic fields. The advantage of our setup is critical current measurement under mechanical stresses comparable to those in the full-size conductor under high magnetic fields. By employing an inductive critical current measurement technique, we conducted an experiment with a transport current of about 10 kA without any power supply or current leads. In our experiments, we observed significant degradation in critical currents due to a compressive stress of about 30 MPa. We applied an innovative technique to mitigate the critical current degradation in mechanically loaded Nb3Sn superconducting multi-strand cables. We molded one such cable with ice and tested it. No degradation occurred in the icemolded cable. In addition, stability was also ensured due to the large thermal conductivity of ice. Thus, we have successfully mitigated the degradation in the critical current of the Nb3Sn conductor by ice molding.
著者
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NISHIMURA Arata
National Institute for Fusion Science
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HISHINUMA Yoshimitsu
National Institute for Fusion Science
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SEO Kazutaka
National Institute for Fusion Science, Oroshi-cho 322-6, Toki-city, Gifu 509-5292, Japan
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HISHINUMA Yoshimitsu
National Institute for Fusion Science, Oroshi-cho 322-6, Toki-city, Gifu 509-5292, Japan
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NISHIJIMA Gen
IMR, Tohoku University, Katahira 2-1-1, Aoba-ku, Sendai, Miyagi 980-8577, Japan
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WATANABE Kazuo
IMR, Tohoku University, Katahira 2-1-1, Aoba-ku, Sendai, Miyagi 980-8577, Japan
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NAKAMURA Kazuya
Sophia University, 7-1 Kioicho, Chiyoda-ku, Tokyo 102-8554, Japan
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TAKAO Tomoaki
Sophia University, 7-1 Kioicho, Chiyoda-ku, Tokyo 102-8554, Japan
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