用于托卡马克聚变的21.7 t大型高温超导环形磁体

IF 1.8 3区 物理与天体物理 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Z. Y. Li;Z. C. Pan;H. G. Yang;Y. Y. Li;Y. J. Cao;L. Qiao;B. Gao;G. Huang;C. Zhang;K. P. Zhu;Y. S. Zhao;K. F. Chen;J. Q. Zhou;L. Yao;Q. Q. Wei;Y. X. Guo;Y. Y. Liu;Y. Huang;H. Qiao;W. J. Chen;Y. Q. Du;K. Zhang;X. Chen;A. H. Gong;G. Dong;Y. M. Ye;Z. Yang
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引用次数: 0

摘要

随着磁约束核聚变技术的快速发展,高温超导体(HTS)由于其在高磁场下优异的载流能力而成为紧凑、高效的托卡马克系统的基石。在此背景下,能量奇点聚变动力技术公司(ES公司)于2023年12月启动了晶田(JT)磁体项目,以验证其下一代全高温超导托卡马克设施HH170的环面磁场磁体设计。在HH170项目之前,ES公司开发并建造了世界上第一台全高温超导托卡马克。该设施于2024年6月成功实现了首次等离子体操作,标志着核聚变技术的一个重要里程碑(Z. Yang等,2024;李振英等,2024)。本文详细介绍了JT磁铁的设计、制造和性能测试,这是一个大型d形绕组包,由32个模块化稀土钡铜氧化物(ReBCO)煎饼线圈组成。在5 K的超临界氦冷却下,JT磁体实现了创纪录的峰值磁场21.7 T,这是全高温超导托卡马克磁体中报道的最高磁场。在24.3 kA下的稳态运行证实了其结构完整性、低温冷却效率以及与磁场模型预测的一致性。JT磁体的成功不仅为HH170设计提供了关键数据,而且为高场紧凑型托卡马克的工程应用奠定了基础里程碑,展示了缩小聚变反应堆尺寸和成本的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
21.7-T Large-Scale High-Temperature Superconducting Toroidal Magnet for Tokamak Fusion Application
With the rapid advancement of magnetic confinement fusion technology, high-temperature superconductors (HTS) have emerged as a cornerstone for compact and efficient tokamak systems due to their exceptional current-carrying capacity under high magnetic fields. Against this backdrop, energy singularity fusion power technology (ES Company) initiated the JingTian (JT) magnet project in December 2023 to validate the toroidal field magnet design for its next-generation all-HTS tokamak facility, HH170. Prior to the HH170 project, ES Company developed and constructed the world’s first all-HTS tokamak. This facility successfully achieved its first plasma operation in June 2024, marking a significant milestone in fusion technology (Z. Yang et al., 2024; Z. Y. Li et al., 2024). This article details the design, fabrication, and performance testing of the JT magnet, a large-scale D-shaped winding pack comprising 32 modular rareearth barium copper oxide (ReBCO) based pancake coils. Operating at 5 K with supercritical helium cooling, the JT magnet achieved a record-breaking peak magnetic field of 21.7 T, the highest reported for an all-HTS tokamak magnet. Steady-state operation at 24.3 kA confirmed its structural integrity, cryogenic cooling efficiency, and alignment with magnetic field modeling predictions. The success of the JT magnet not only provides critical data for the HH170 design but also establishes a foundational milestone for the engineering application of high-field compact tokamaks, demonstrating significant potential to reduce fusion reactor size and cost.
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来源期刊
IEEE Transactions on Applied Superconductivity
IEEE Transactions on Applied Superconductivity 工程技术-工程:电子与电气
CiteScore
3.50
自引率
33.30%
发文量
650
审稿时长
2.3 months
期刊介绍: IEEE Transactions on Applied Superconductivity (TAS) contains articles on the applications of superconductivity and other relevant technology. Electronic applications include analog and digital circuits employing thin films and active devices such as Josephson junctions. Large scale applications include magnets for power applications such as motors and generators, for magnetic resonance, for accelerators, and cable applications such as power transmission.
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