Yufan Yan , Donghui Jiang , Peng Song , Jeonghwan Park , Seungyong Hahn , Yunfei Tan , Timing Qu
{"title":"紧凑型 REBCO 线圈在自场和背景场中的屏蔽电流诱导磁场和应变","authors":"Yufan Yan , Donghui Jiang , Peng Song , Jeonghwan Park , Seungyong Hahn , Yunfei Tan , Timing Qu","doi":"10.1016/j.supcon.2023.100082","DOIUrl":null,"url":null,"abstract":"<div><p>REBa<sub>2</sub>Cu<sub>3</sub>O<sub>7−</sub><em><sub>x</sub></em> (REBCO) coated conductors, owing to its high tensile strength and current-carrying ability in a background field, are widely regarded a promising candidate in high-field applications. Despite the great potentials, recent studies have highlighted the challenges posed by screening currents, which are featured by a highly nonuniform current distribution in the superconducting layer. In this paper, we report a comprehensive study on the behaviors of screening currents in a compact REBCO coil, specifically the screening-current-induced magnetic fields and strains. Experiments were carried out in the self-generated magnetic field and a background field, respectively. In the self-field condition, the full hysteresis of the magnetic field was obtained by applying current sweeps with repeatedly reversed polarity, as the nominal center field reached 9.17 T with a maximum peak current of 350 A. In a background field of 23.15 T, the insert coil generated a center field of 4.17 T with an applied current of 170 A. Ultimately, a total center field of 32.58 T was achieved before quench. Both the sequential model and the coupled model considering the perpendicular field modification due to conductor deformation are applied. The comparative study shows that, for this coil, the electromagnetic–mechanical coupling plays a trivial role in self-field conditions up to 9 T. In contrast, with a high axial field dominated by the background field, the coupling effect has a stronger influence on the predicted current and strain distributions. Further discussions regarding the role of background field on the strains in the insert suggest potential design strategies to maximize the total center field.</p></div>","PeriodicalId":101185,"journal":{"name":"Superconductivity","volume":"9 ","pages":"Article 100082"},"PeriodicalIF":5.6000,"publicationDate":"2023-12-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S2772830723000479/pdfft?md5=aa18d1d395434a3c0a7d6967e6ce67f7&pid=1-s2.0-S2772830723000479-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Screening-current-induced magnetic fields and strains in a compact REBCO coil in self field and background field\",\"authors\":\"Yufan Yan , Donghui Jiang , Peng Song , Jeonghwan Park , Seungyong Hahn , Yunfei Tan , Timing Qu\",\"doi\":\"10.1016/j.supcon.2023.100082\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>REBa<sub>2</sub>Cu<sub>3</sub>O<sub>7−</sub><em><sub>x</sub></em> (REBCO) coated conductors, owing to its high tensile strength and current-carrying ability in a background field, are widely regarded a promising candidate in high-field applications. Despite the great potentials, recent studies have highlighted the challenges posed by screening currents, which are featured by a highly nonuniform current distribution in the superconducting layer. In this paper, we report a comprehensive study on the behaviors of screening currents in a compact REBCO coil, specifically the screening-current-induced magnetic fields and strains. Experiments were carried out in the self-generated magnetic field and a background field, respectively. In the self-field condition, the full hysteresis of the magnetic field was obtained by applying current sweeps with repeatedly reversed polarity, as the nominal center field reached 9.17 T with a maximum peak current of 350 A. In a background field of 23.15 T, the insert coil generated a center field of 4.17 T with an applied current of 170 A. Ultimately, a total center field of 32.58 T was achieved before quench. Both the sequential model and the coupled model considering the perpendicular field modification due to conductor deformation are applied. The comparative study shows that, for this coil, the electromagnetic–mechanical coupling plays a trivial role in self-field conditions up to 9 T. In contrast, with a high axial field dominated by the background field, the coupling effect has a stronger influence on the predicted current and strain distributions. 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引用次数: 0
摘要
REBa2Cu3O7-x(REBCO)涂层导体具有很高的抗拉强度和在背景场中的载流能力,因此被广泛认为是高场应用中的理想候选材料。尽管潜力巨大,但最近的研究突出了屏蔽电流带来的挑战,其特点是超导层中的电流分布极不均匀。本文报告了对紧凑型 REBCO 线圈中屏蔽电流行为的全面研究,特别是屏蔽电流引起的磁场和应变。实验分别在自发磁场和背景磁场条件下进行。在自生磁场条件下,通过反复反向极性的电流扫描获得了完整的磁场滞后,标称中心磁场达到 9.17 T,最大峰值电流为 350 A;在 23.15 T 的背景磁场中,插入线圈产生了 4.17 T 的中心磁场,外加电流为 170 A。我们采用了顺序模型和耦合模型,其中都考虑到了导体变形引起的垂直场变化。对比研究表明,对于该线圈,电磁-机械耦合在自场条件下的作用微不足道,最高可达 9 T。相反,在背景场主导的高轴向场中,耦合效应对预测的电流和应变分布有更大的影响。有关背景场对插入件应变作用的进一步讨论,为最大化总中心场提出了潜在的设计策略。
Screening-current-induced magnetic fields and strains in a compact REBCO coil in self field and background field
REBa2Cu3O7−x (REBCO) coated conductors, owing to its high tensile strength and current-carrying ability in a background field, are widely regarded a promising candidate in high-field applications. Despite the great potentials, recent studies have highlighted the challenges posed by screening currents, which are featured by a highly nonuniform current distribution in the superconducting layer. In this paper, we report a comprehensive study on the behaviors of screening currents in a compact REBCO coil, specifically the screening-current-induced magnetic fields and strains. Experiments were carried out in the self-generated magnetic field and a background field, respectively. In the self-field condition, the full hysteresis of the magnetic field was obtained by applying current sweeps with repeatedly reversed polarity, as the nominal center field reached 9.17 T with a maximum peak current of 350 A. In a background field of 23.15 T, the insert coil generated a center field of 4.17 T with an applied current of 170 A. Ultimately, a total center field of 32.58 T was achieved before quench. Both the sequential model and the coupled model considering the perpendicular field modification due to conductor deformation are applied. The comparative study shows that, for this coil, the electromagnetic–mechanical coupling plays a trivial role in self-field conditions up to 9 T. In contrast, with a high axial field dominated by the background field, the coupling effect has a stronger influence on the predicted current and strain distributions. Further discussions regarding the role of background field on the strains in the insert suggest potential design strategies to maximize the total center field.