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用于降低猝灭感应峰值电流的部分绝缘高温超导磁体。

Partial-Insulation HTS Magnet for Reduction of Quench-Induced Peak Currents.

作者信息

Lee Wooseung, Park Dongkeun, Bascuñán Juan, Iwasa Yukikazu

机构信息

MIT Francis Bitter Magnet Laboratory/Plasma Science and Fusion Center, Cambridge, MA 02139, USA.

出版信息

IEEE Trans Appl Supercond. 2022 Sep;32(6). doi: 10.1109/tasc.2022.3156064. Epub 2022 Mar 3.

Abstract

The No-insulation-like (NI) coil's turn-to-turn current paths prevent local heating by forcing the current to bypass into nearby turns when a hot spot appears in a coil. However, the changing direction of the current by bypassing will change the magnetic flux, which generates unwanted induced currents in the adjacent coils in a multiply-stacked HTS magnet. This induced current can temporarily exceed the designed maximum currents in the NI coils, damaging the magnet. A partial-insulation (PI) coil, in which a single or multiple insulated, with a polyimide-like material or a thin ceramic film, is inserted between windings to hinder the current paths, can reduce the peak induced currents in the NI HTS coil's current paths. In this paper, we present the results of a simulation study on the peak-induced current upon a quench of the PI HTS magnet with a double pancake. The study shows that the peak-induced current varies with the number of insulated turns. We also discuss the induced current turn-by-turn simulation. According to the simulation result, the PI effectively reduces overall induced current, especially insulation applied every two turns.

摘要

无绝缘类(NI)线圈的匝间电流路径通过在热点出现在线圈中时迫使电流旁路到附近的匝中来防止局部发热。然而,通过旁路改变电流方向会改变磁通量,这会在多层堆叠的高温超导磁体的相邻线圈中产生不需要的感应电流。这种感应电流可能会暂时超过NI线圈中设计的最大电流,从而损坏磁体。部分绝缘(PI)线圈,其中在绕组之间插入一层或多层用聚酰亚胺类材料或薄陶瓷膜绝缘的材料以阻碍电流路径,可以降低NI高温超导线圈电流路径中的峰值感应电流。在本文中,我们展示了对具有双饼式结构的PI高温超导磁体失超时峰值感应电流的模拟研究结果。研究表明,峰值感应电流随绝缘匝数的变化而变化。我们还讨论了逐匝感应电流模拟。根据模拟结果,PI有效地降低了整体感应电流,特别是每两匝施加绝缘的情况。

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本文引用的文献

1
Hot-Spot Modeling of REBCO NI Pancake Coil: Analytical and Experimental Approaches.
IEEE Trans Appl Supercond. 2021 Aug;31(5). doi: 10.1109/tasc.2021.3070240. Epub 2021 Mar 31.
2
HTS Pancake Coils Without Turn-to-Turn Insulation.
IEEE Trans Appl Supercond. 2011 Jun;21(3). doi: 10.1109/tasc.2010.2093492. Epub 2010 Dec 23.
3
Quench Analyses of the MIT 1.3-GHz LTS/HTS NMR Magnet.
IEEE Trans Appl Supercond. 2019 Aug;29(5). doi: 10.1109/TASC.2019.2903268. Epub 2019 Mar 6.
4
MIT 1.3-GHz LTS/HTS NMR Magnet: Post Quench Analysis and New 800-MHz Insert Design.
IEEE Trans Appl Supercond. 2019 Aug;29(5). doi: 10.1109/TASC.2019.2901026. Epub 2019 Feb 22.

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