利用绝缘高温超导体磁体的自耦合能量吸收实现快速放电

Jingyi Liu, Zhen Lu, Yawei Wang, Qingqing Yang, Yutong Fu, Yue Zhao, Zhijian Jin
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摘要

对于高温超导体(HTS)线圈而言,淬火保护一直是一项挑战。淬火检测后的快速电流放电对于成功保护线圈非常重要。最初用于冷却的铜板可通过线圈与铜板之间的电磁耦合显著加速 HTS 线圈的放电过程。然而,这种技术的基本物理机制尚未得到深入研究。在此,我们通过实验和仿真详细研究了与铜板耦合的 HTS 线圈的电磁和热特性。结果表明,在快速放电过程的早期阶段,加速电流下降后会出现相当大的电流反弹。这种线圈电流反弹是由温度升高和铜板电阻率引起的,铜板被诱导涡流加热。铜板的热传导可使整个线圈快速均匀加热,从而加快放电过程,同时也会诱发过流淬火风险。本文分析了一块 30 T@20 K 的 HTS 磁体,其中有 36 个单板。耦合铜板可使线圈电流在最初 8 毫秒内下降 36.9%。铜板引起的温升在多个线圈系统中的分布相当不均匀。通过优化铜板的电阻率以及铜板和线圈之间的磁耦合强度,可以增强保护能力。这项技术在保护绝缘 HTS 磁体方面具有巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fast current discharging using self-coupling energy absorption for insulated high temperature superconductor magnets
Quench protection has always been challenging for high-temperature superconductor (HTS) coils. Fast current discharge after quench detection is important for a successful coil protection. The copper plates initially intended for cooling can significantly accelerate the discharging process for HTS coils through electromagnetic coupling between coils and copper plates. However, the underlying physical mechanism of this technique has not been studied thoroughly. Here we present a detailed study on the electromagnetic and thermal characteristics of HTS coils coupled with copper plates through experiments and simulations. The results show that a considerable current rebound occurs after an accelerating current drop in the early stage of the fast-discharging process. This coil current rebound is induced by temperature rise as well as the resistivity of copper plates, which are heated by induced eddy current. The heat transfer from copper plates can uniformly heat the whole coil rapidly, which speeds up the discharging process, meanwhile it can also induce overcurrent quench risk. A 30 T@20 K HTS magnet with 36 single pancakes is analyzed. The coupling copper plates can make the coil current drop to 36.9% within the initial 8 ms. The temperature rise induced by copper plates shows a considerable nonuniform distribution among the multiple coil systems. The protection can be enhanced by optimizing the resistivity of copper plates and magnetic coupling strength between plates and coils. This technique has great potential for the protection of insulated HTS magnets.
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