Performance of first insert coil with REBCO CICC sub-size cable exceeding 6 kA at 21 T magnetic field

导线 螺线管 材料科学 电流(流体) 电磁线圈 电阻式触摸屏 磁场 插入(复合材料) 导电体 临界电流 核工程 磁铁 液氦 复合材料 电气工程 物理 工程类 原子物理学 量子力学
作者
Chao Zhou,Huan Jin,Zhen Fang,Guanyu Xiao,Hongjun Ma,Fang Liu,Huajun Liu,Tao Ma,Yunfei Tan,Wenge Chen,Zuojiafeng Wu,Shintetsu Kanazawa,Arend Nijhuis,A. Devred,Jiangang Li,Jinggang Qin
出处
期刊:Superconductor Science and Technology [IOP Publishing]
卷期号:35 (11): 114003-114003 被引量:5
标识
DOI:10.1088/1361-6668/ac8cbc
摘要

Abstract The Institute of Plasma Physics at the Chinese Academy of Sciences is developing the REBCO cable in conduit conductor (CICC) technology for applications in next-generation nuclear fusion devices. The aim is to develop a CICC comprised of six REBCO sub-cables to satisfy the requirements of operation with a current of around 40 kA and a peak field of up to 20 T. To qualify the performance of the sub-size REBCO cable to be used in the CICC, two 25-turn insert solenoids have been designed, manufactured and tested at a current exceeding 6 kA subjected in a background field supplied by a water-cooled resistive magnet. The insert solenoid, wound from a 11.5 m long REBCO CORC ® cable, was designed to investigate its current carrying capacity under high field and electromagnetic (EM) load at 4.2 K. Tests were performed under a background magnetic field up to 18.5 T, resulting in a peak magnetic field on the innermost layer turns of around 21.1 T at an operating current of 6.3 kA. The effects of operation with cyclic EM loads were tested by repeated current ramps to around 95% of the critical current. Moreover, the V – I characteristics were measured at 77 K and the self-field, to check the effects from warm-up and cool-down (WUCD) cycles between room temperature and 77 K with liquid nitrogen. The results show no obvious degradation after dozens of high-current test cycles in background fields ranging from 10 T to 18.5 T. The insert solenoid demonstrates the stable operation of the REBCO sub-size cable for CICC with EM loads of about 90 kN m −1 and WUCD cycles between room temperature and 77 K. These promising results indicate the potential of this technology for further applicationsin particular, for full-size CICC for high-performance fusion magnets.

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