Quench protection for high-temperature superconductor cables using active control of current distribution

M. Marchevsky, S. Prestemon
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Abstract

Superconducting magnets of future fusion reactors are expected to rely on composite high-temperature superconductor (HTS) cable conductors. In presently used HTS cables, current sharing between components is limited due to poorly defined contact resistances between superconducting tapes or by design. The interplay between contact and termination resistances is the defining factor for power dissipation in these cables and ultimately defines their safe operational margins. However, the current distribution between components along the composite conductor and inside its terminations is a priori unknown, and presently, no means are available to actively tune current flow distribution in real-time to improve margins of quench protection. Also, the lack of ability to electrically probe individual components makes it impossible to identify conductor damage locations within the cable. In this work, we address both problems by introducing active current control of current distribution between components using cryogenically operated metal-oxide-semiconductor-field-effect transistors (MOSFETs). We demonstrate through simulation and experiments how real-time current controls can help to drastically reduce heat dissipation in a developing hot spot in a two-conductor model system and help identify critical current degradation of individual cable components. Prospects of other potential uses of MOSFET devices for improved voltage detection, AC loss-driven active quench protection, and remnant magnetization reduction in HTS magnets are also discussed.
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利用电流分配主动控制为高温超导体电缆提供淬火保护
未来聚变反应堆的超导磁体预计将依靠复合高温超导体(HTS)电缆导体。在目前使用的 HTS 电缆中,由于超导带之间的接触电阻定义不清或设计原因,组件之间的电流共享受到限制。接触电阻和终端电阻之间的相互作用是这些电缆功率耗散的决定性因素,并最终决定了电缆的安全运行裕度。然而,复合导体沿线及其终端内部各组件之间的电流分布是先验未知的,目前也没有任何方法可以实时主动调整电流分布以提高淬火保护裕度。此外,由于缺乏对单个组件进行电探测的能力,因此无法确定电缆内导体的损坏位置。在这项工作中,我们利用低温操作的金属氧化物半导体场效应晶体管 (MOSFET) 对元件间的电流分布进行主动电流控制,从而解决了这两个问题。我们通过模拟和实验展示了实时电流控制如何帮助大幅减少双导体模型系统中正在形成的热点的散热,并帮助识别单个电缆组件的临界电流衰减。此外,我们还讨论了 MOSFET 器件在改进电压检测、交流损耗驱动的主动淬火保护以及减少 HTS 磁体残余磁化方面的其他潜在用途。
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