并联无绝缘高温超导线圈的淬火行为

IF 5.6 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Yutong Fu , Guangtong Ma , Fangliang Dong , Yawei Wang
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引用次数: 0

摘要

无绝缘(NI)高温超导(HTS)线圈采用平行堆叠带绕制,具有电感小、斜坡速度快等优点,是高场聚变磁体的理想选择。平行叠带结构导致了局部淬火过程中每一匝叠带之间新的电流重新分布,这也极大地改变了匝间接触的电流重新分布行为。因此,并联无绝缘线圈(PWNI)的猝灭行为应该与单带绕组不同,这一点尚不清楚。研究了局部热点诱导下PWNI高温超导线圈的淬火行为。建立了一个集成等效电路网络、有限元传热模块和有限元T-A模型的多物理场模型,分析了PWNI高温超导线圈在淬火过程中的电磁和热特性。结果表明,当局部热点发生时,输运电流主要通过端子电阻在平行堆叠的胶带之间重新分布,而对匝间电接触的依赖性较小。它会导致PWNI线圈内的耦合电流,而这种电流在单带(单绕无绝缘(SWNI)线圈)缠绕的NI线圈中是不存在的,从而导致平行缠绕带之间的传输电流分布极不均匀。减小的终端连接电阻进一步增强了耦合电流,可能导致PWNI线圈中额外的过流淬火风险。此外,平行堆叠带之间的电流再分布抑制了PWNI线圈中匝间电流的再分布,从而显著降低了其在高热扰动下的磁场退化,几乎不到本研究中SWNI线圈的一半。研究结果对PWNI缠绕高磁场磁体的安全运行和鲁棒性提高具有重要的理论指导意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quench behaviors of parallel-wound no-insulation high temperature superconductor coils
No-insulation (NI) high-temperature superconducting (HTS) coil wound with parallel-stacked tapes emerges as a prospective choice for high-field fusion magnets owing to lower inductance and faster ramping rate. The parallel stacked-tape structure leads to new current redistribution among stacked tapes in each turn during local quenches, which also considerably changes the current redistribution behavior through inter-turn contacts. Therefore, quench behaviors of parallel-wound no-insulation (PWNI) coil should differ from its counterpart wound with single tape, which are still unknown. This study is to illustrate quench behaviors of PWNI HTS coils induced by local hot spot. A multi-physics model integrating an equivalent circuit network, a FEM heat transfer module, and a FEM T-A model is developed to analyze the electromagnetic and thermal characteristics of PWNI HTS coils during quench. Results show that the transport currents are mainly redistributed among parallel-stacked tapes through terminal resistances when a local hot spot happens on one tape, while being less dependent on turn-to-turn electrical contacts. It leads to a coupling current within PWNI coils that is not present in NI coils wound with single tape (single-wound no-insulation (SWNI) coil), resulting in a highly non-uniform transport current distribution among parallel-wound tapes. The reduced terminal joint resistances further enhance the coupling current, potentially leading to an extra overcurrent quench risk in PWNI coils. Moreover, the current redistribution between parallel-stacked tapes inhibits the turn-to-turn current redistribution in the PWNI coil, thus significantly reducing its magnetic field degradation under a high heat disturbance, which can be almost less than half of the SWNI counterpart in this study. These results offer important theoretical guidance to safety operation and robustness improvement of high-field HTS magnets wound by PWNI technique.
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