一种由准操作高温超导线圈实现的新型困场磁体

iEnergy Pub Date : 2024-12-30 DOI:10.23919/IEN.2024.0030
Hengpei Liao;Aleksandr Shchukin;Roshan Parajuli;Xavier Chaud;Jung-Bin Song;Min Zhang;Weijia Yuan
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引用次数: 0

摘要

本文介绍了一种通过磁化实现闭环高温超导线圈的紧凑高场超导磁体的新方法。采用低阻接头制备了一种用于磁场冷却磁化的闭环高温超导线圈。高温超导线圈在30分钟内获得了中心场衰减率仅为0.0087%的捕获场。更有趣的是,4.59 T的中心捕获场超过了4.5 T的初始应用场,而通过进一步的数值研究,在高温超导线圈的内边缘附近发现了一个6 T的峰值捕获场。这种现象不同于在高温超导体和堆中观察到的被困场分布,在那里被困场不能超过施加的场。确定了电流密度和磁场的独特分布是捕获场超过外加场的原因。该研究为开发紧凑型高温超导磁体提供了一种新方法,可用于超导磁能存储(SMES)系统、超导机器、磁悬浮等一系列高场应用,并提出了一种可行的方法,可以将磁场强度放大到现有磁场源设备之外。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Trapped Field Magnet Enabled by a Quasi-Operational HTS Coil
This study introduces a novel approach to realizing compact high-field superconducting magnets by enabling a closed-loop high temperature superconducting (HTS) coil through magnetization. A circular closed-loop HTS coil is fabricated with a low resistive joint for field cooling magnetization. The HTS coil achieved a trapped field with only a 0.0087% decay in central field over 30 minutes. More interestingly, the central trapped field of 4.59 T exceeds the initial applied field of 4.5 T, while a peak trapped field of 6 T near the inner edge of the HTS coil, is identified through further numerical investigation. This phenomenon differs from the trapped field distributions observed in HTS bulks and stacks, where the trapped cannot exceed the applied one. Unique distributions of current density and magnetic field are identified as the reason for the trapped field exceeding the applied field. This study offers a new way to develop compact HTS magnets for a range of high-field applications such as superconducting magnetic energy storage (SMES) systems, superconducting machines, Maglev and proposes a viable method for amplifying the field strength beyond that of existing magnetic field source devices.
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