Design and Analysis of Short Period 2G-HTS Undulators

IF 1.7 3区 物理与天体物理 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Applied Superconductivity Pub Date : 2025-01-08 DOI:10.1109/TASC.2024.3524211
Ibrahim Kesgin;Mark Jaski
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Abstract

Recent advancements in second-generation high-temperature superconducting (2G-HTS) materials have opened new possibilities for superconducting undulator (SCU) technology, particularly in achieving shorter periods and higher magnetic fields. This paper presents the design and analysis of a short-period, as small as 10 mm, 2G-HTS undulator, focusing on magnetic performance, mechanical force minimization, and quench protection. A force-balanced coil pack design is introduced to significantly reduce mechanical stresses on the conductors, eliminating the need for heavy support structures. Rapid prototyping techniques such as3D printing is employed to refine the design for scalability and manufacturability. Correction schemes for end-field effects are developed using a combination of 2G-HTS tapes and NbTi conductors to optimize field integrals. Simulation results demonstrated that optimized magnetic performance and enhanced mechanical stability, positioning 2G-HTS undulators as promising candidates for storage ring and free-electron based light sources.
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短周期2G-HTS波动器的设计与分析
第二代高温超导(2G-HTS)材料的最新进展为超导波动器(SCU)技术开辟了新的可能性,特别是在实现更短的周期和更高的磁场方面。本文介绍了一种小至10mm的短周期2G-HTS波动器的设计和分析,重点是磁性能、机械力最小化和淬火保护。引入了力平衡线圈包设计,显著降低了导体上的机械应力,消除了对重型支撑结构的需求。采用3d打印等快速原型技术来改进可扩展性和可制造性的设计。利用2G-HTS带和NbTi导体的组合开发了端场效应的校正方案,以优化场积分。仿真结果表明,优化的磁性能和增强的机械稳定性,使2G-HTS波动器成为存储环和自由电子光源的有希望的候选者。
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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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