特邀综述

核磁共振磁体超导接头工艺研究进展

  • 黄兴 ,
  • 张子立 ,
  • 胡新宁 ,
  • 牛飞飞 ,
  • 孙万硕 ,
  • 孔祥东 ,
  • 戴银明
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  • 1. 中国科学院应用超导重点实验室(中国科学院 电工研究所), 北京 100190
    2. 中国科学院大学, 北京 100049

收稿日期: 2021-02-02

  网络出版日期: 2021-03-30

基金资助

国家自然科学基金资助项目(20825416);国家自然科学基金资助项目(21374051);国家自然科学基金资助项目(12042506);国家重点基础研究发展计划(“973”计划)资助项目(2012CB821503);国家重大科研仪器研制项目(51827810);中国科学院磁共振技术联盟科研仪器设备研制项目(2020GZL001);国家重点研发计划(2018YFF0109401)

Research Progresses Concerning the Superconducting Joints Used in Nuclear Magnetic Resonance Magnets

  • Xing HUANG ,
  • Zi-li ZHANG ,
  • Xin-ning HU ,
  • Fei-fei NIU ,
  • Wan-shuo SUN ,
  • Xiang-dong KONG ,
  • Yin-ming DAI
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  • 1. CAS Key Laboratory of Applied Superconductivity, Institute of Electrical Engineering, Chinese Academy of Sciences, Beijing 100190, China
    2. University of Chinese Academy of Sciences, Beijing 100049, China

Received date: 2021-02-02

  Online published: 2021-03-30

摘要

高度稳定的磁场对于核磁共振(NMR)波谱仪至关重要.为了保持磁场的稳定性,高质量的超导接头必不可少.它在过去几十年中,受到NMR超导磁体研究人员的广泛关注.本文从五个部分介绍了超导接头技术的研究进展:第一部分简要介绍了NMR超导磁体和超导接头的发展;第二部分概述了低温超导体材料之间超导接头的研究进展;第三部分介绍了高温超导体材料之间的接头;第四部分讨论了有关超导接头电阻的测量技术;最后,提出了对超导接头技术研究的展望.

本文引用格式

黄兴 , 张子立 , 胡新宁 , 牛飞飞 , 孙万硕 , 孔祥东 , 戴银明 . 核磁共振磁体超导接头工艺研究进展[J]. 波谱学杂志, 2021 , 38(3) : 424 -432 . DOI: 10.11938/cjmr20212887

Abstract

Highly stable magnetic field is essential to nuclear magnetic resonance (NMR) spectrometers. To maintain the magnetic field stability, high-quality superconducting joints are required. Along with the development of NMR superconductor magnet, researches on superconducting joints have also attracted lots of attention from all over the world in the past decades. This review paper introduces the research progress of superconducting joint technology. The first part briefly introduces the development of NMR superconducting magnet and superconducting joint. The second part summarizes the research progresses of superconducting joint between low temperature superconductor materials. The joint between high temperature superconductor materials is demonstrated in the third part. In the fourth part, the measurement technology regarding the resistance of superconducting joints is discussed. Finally, an outlook on superconducting joint research is presented for further discussion in the community.

参考文献

1 MA C W , YANG H Y , ZHONG K . Research progresses of high-field MRI 1H/31P dual-tuned radio frequency coil[J]. Chinese J Magn Reson, 2021, 38 (1): 118- 139.
1 马聪伟, 杨鸿毅, 钟凯. 高场磁共振成像1H/31P双调谐射频线圈研究进展[J]. 波谱学杂志, 2021, 38 (1): 118- 139.
2 HE G , WANG W M . A multi-channel radiofrequency transmitter for high-field MRI[J]. Chinese J Magn Reson, 2017, 34 (3): 338- 346.
2 何刚, 王为民. 一种用于高场MRI的多源射频发射机[J]. 波谱学杂志, 2017, 34 (3): 338- 346.
3 HASHI K , OHKI S , GOTO A , et al. Development of an NMR spectrometer operated beyond 1 GHz: NMR evaluation of the magnet and its application[J]. Teion Kogaku, 2016, 51 (7): 329- 334.
4 BANCI L, BARBIERI L, CALDERONE V, et al. Biomolecular NMR at 1.2 GHz[EB/OL]. [2019-10-16]. https://arxiv.org/ftp/arxiv/papers/1910/1910.07462.pdf.
5 IWASA Y , BASCUNAN J , HAHN S , et al. A High-Resolution 1.3-GHz/54-mm LTS/HTS NMR Magnet[J]. IEEE Transactions on Applied Superconductivity, 2015, 25 (3): 1- 5.
6 MAEDA H , SHIMOYAMA J I , YANAGISAWA Y , et al. The MIRAI program and the new super-high field NMR initiative and its relevance to the development of superconducting joints in Japan[J]. IEEE T Appl Supercon, 2019, 29 (5): 4602409.
7 BRITTLES G D , MOUSAVI T , GROVENOR C R M , et al. Persistent current joints between technological superconductors[J]. Supercond Sci Tech, 2015, 28 (9): 093001.
8 SHEN W , COFFEY M , MCGH EE W . Development of A 600 MHz wide bore (89 mm) NMR system using internal tin wires[J]. IEEE T Appl Supercon, 2001, 11 (1): 2429- 2432.
9 LIU J H , CHENG J S , WANG Q L . Evaluation of NbTi superconducting joints for 400 MHz NMR magnet[J]. IEEE T Appl Supercon, 2013, 23 (6): 34- 39.
10 WEN H M , LIN L Z , HAN S . Joint resistance measurement using current-comparator for superconducting wires in high magnetic field[J]. IEEE T Magn, 2002, 28 (1): 834- 836.
11 TOMINAKA T , KAKUGAWA S . Electrical properties of superconducting joint between composite conductors[J]. IEEE T Magn, 1991, 27 (2): 1846- 1849.
12 LEUPOLD M J , IWASA Y . Superconducting joint between multifilamentary wires 1. Joint-making and joint results[J]. Cryogenics, 1976, 16 (4): 215- 216.
13 NUDING J M. Method of making a superconductive joint: US, 3422529[P]. 1969-01-21.
14 PHILLIP S , PORTO J V , PARPIA J M . Two methods of fabricating reliable superconducting joints with multifilamentary Nb-Ti superconducting wire[J]. J Low Temp Phys, 1995, 101 (3, 4): 581- 585.
15 CHENG J S , WANG Q L , ZHOU F , et al. Development of electromagnetic forming NbTi superconducting joint[J]. IEEE T Appl Supercon, 2016, 26 (7): 6001705.
16 LIU S Y , JIANG X H , CHAI G L , et al. Superconducting joint and persistent current switch for a 7-T animal MRI magnet[J]. IEEE T Appl Supercon, 2013, 23 (3): 4400504.
17 KODAMA M , OKAMOTO K , KOGA Y , et al. Analysis for formation of current path in the superconducting joint between Nb-Ti wires with the solder matrix replacement method[J]. Supercond Sci Tech, 2015, 28 (4): 239- 242.
18 SANTRA S , DAVIES T , MATTHEWS G , et al. The effect of the size of NbTi filaments on interfacial reactions and the properties of InSn-based superconducting solder joints[J]. Mater Design, 2019, 176 (C): 107836.
19 LI J D , LIN L Z , HAN S , et al. The properties of cold-welded joints between multifilamentary Nb3Sn wires[J]. Cryogenics, 1994, 34 (S1): 497- 500.
20 MCINTYRE P , WU Y W Y , LIANG G L G , et al. Study of Nb3Sn superconducting joints for very high magnetic field NMR spectrometers[J]. IEEE T Appl Supercon, 1995, 5 (2): 238- 241.
21 SWENSON C A , MARKIEWICZ W D . Persistent joint development for high field NMR[J]. IEEE T Appl Supercon, 1999, 9 (2): 185- 188.
22 PARK Y J , LEE M W , ANN H , et al. A superconducting joint for GdBa2Cu3O7-d-coated conductors[J]. NPG Asia Materials, 2014, 6 (5): e98.
23 PARK Y J , LEE M W , OH Y K , et al. Laser drilling: enhancing superconducting joint of GdBa2Cu3O7-d coated conductors[J]. Supercond Sci Technol, 2014, 27 (8): 085008.
24 JIN X Z , YANAGISAWA Y , MAEDA H , et al. Development of a superconducting joint between a GdBa2Cu3O7-d-coated conductor and YBa2Cu3O7-d bulk: towards a superconducting joint between RE (Rare Earth) Ba2Cu3O7-d-coated conductors[J]. Supercond Sci Technol, 2015, 28 (7): 075010.
25 JIN X Z , YANAGISAWA Y , MAEDA H . Measurement of persistent current in a Gd123 coil with a superconducting joint fabricated by the CJMB method[J]. IEEE T Appl Supercon, 2018, 28 (3): 4602604.
26 FURUKAWA ELECTRIC CO, LTD & INSTITUTE FOR MATERIALS RESEARCH, TOHOKU UNIVERSITY. Development of persistent current technology using rare earth superconducting wire materials-progress toward realization of MRI magnets using HTS wire materials[EB/OL]. [2016-04-27]. https://www.furukawa.co.jp/en/release/2016/kenkai_160427.html.
27 OHKI K , NAGAISHI T , KATO T , et al. Fabrication, microstructure and persistent current measurement of an intermediate grown superconducting (iGS) joint between REBCO-coated conductors[J]. Supercon Sci Technol, 2017, 30 (11): 115017.
28 BRITTLES G D , NOONAN P , KEYS S A , et al. Rapid characterisation of persistent current joints by SQUID magnetometry[J]. Supercon Sci Technol, 2014, 27 (12): 122002.
29 IWASA Y . Superconducting joint between multifilamentary wires 2. Joint evaluation technique[J]. Cryogenics, 1976, 16 (4): 217- 219.
30 KIYOSHI T , INOUE K , KOSUGE M , et al. Current decay evaluation of closed HTS coil circuits[J]. IEEE T Appl Supercon, 1997, 7 (2): 877- 880.
31 ZHUANG C , GU C , CHEN D X , et al. Persistent current of Bi2223/Ag closed coil in 77 K[J]. IEEE T Appl Supercon, 2007, 17 (2): 3125- 3128.
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