Design of a conduction-cooled 9.4T REBCO magnet for whole-body MRI systems

被引:47
|
作者
Miyazaki, Hiroshi [1 ]
Iwai, Sadanori [1 ]
Otani, Yasumi [1 ]
Takahashi, Masahiko [1 ]
Tosaka, Taizo [1 ]
Tasaki, Kenji [1 ]
Nomura, Shunji [1 ]
Kurusu, Tsutomu [1 ]
Ueda, Hiroshi [2 ,4 ]
Noguchi, So [3 ,4 ]
Ishiyama, Atsushi [4 ]
Urayama, Shinichi [5 ]
Fukuyama, Hidenao [5 ]
机构
[1] Toshiba Co Ltd, Yokohama, Kanagawa 2300045, Japan
[2] Okayama Univ, Okayama 7708530, Japan
[3] Hokkaido Univ, Sapporo, Hokkaido 0600814, Japan
[4] Waseda Univ, Tokyo 1698555, Japan
[5] Kyoto Univ, Kyoto 6068507, Japan
来源
SUPERCONDUCTOR SCIENCE & TECHNOLOGY | 2016年 / 29卷 / 10期
关键词
ultra-high-field MRI; REBCO; conduction-cooled;
D O I
10.1088/0953-2048/29/10/104001
中图分类号
O59 [应用物理学];
学科分类号
摘要
A project on the development of REBa2Cu3O7-delta (REBCO) magnets for ultra-high-field magnetic resonance imaging (MRI) was started in 2013. Since REBCO-coated conductors feature high mechanical strength under tensile stress and high critical current density, use of REBCO coils would allow superconducting magnets to be made smaller and lighter than conventional ones. In addition, a conduction-cooled superconducting magnet is simpler to use than one cooled by a liquid helium bath because the operation and maintenance of the cryogenic system become simpler, without the need to handle cryogenic fluid. Superconducting magnets for MRI require homogeneous, stable magnetic fields. The homogeneity of the magnetic field is highly dependent on the coil shape and position. Moreover, in REBCO magnets, the screening-current- induced magnetic field, which changes the magnetic field distribution of the magnet, is one of the critical issues. In order to evaluate the magnetic field homogeneity and the screening-current- induced magnetic field, a 1 T model magnet and some test coils were fabricated. From an evaluation of the 1 T model magnet, it was found that the main reason for magnetic field inhomogeneity was the tolerances in the z-axis positions of the coils, and therefore, it is important to control the gap between the single pancakes. In addition, we have already demonstrated the generation of an 8.27 T central magnetic field at 10 K with a small test coil. The screening-current-induced magnetic field was 0.43 T and was predictable by using an electromagnetic field simulation program. These results were reflected in the design of a conduction-cooled 9.4 T REBCO magnet for whole-body MRI systems. The magnet was composed of six main coils and two active shield coils. The total conductor length was 581 km, and the stored energy was 293 kJ. The field inhomogeneity was 24 ppm peak to peak and 3 ppm volume-root-mean-square (VRMS) for a 500 mm diameter spherical volume (DSV). The axial and radial 5 gauss line locations were less than 5 m and 4.2 m respectively.
引用
收藏
页数:7
相关论文
共 50 条
  • [41] The Study of a 3 T Conduction-Cooled Superconducting Magnet for Animal Magnetic Resonance Imaging
    Chen S.
    Wang Q.
    Sun W.
    Sun J.
    Cheng J.
    Diangong Jishu Xuebao/Transactions of China Electrotechnical Society, 2023, 38 (04): : 879 - 888
  • [42] Thermal Design of the Conduction-Cooled High Temperature Superconducting Magnet for Pulsating Magnetic Field
    Kwon, Dohoon
    Kim, Bokeum
    Choi, Jongho
    Jeong, Sangkwon
    Kim, Seokho
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2023, 33 (05)
  • [43] Thermal Design of the Conduction-Cooled High Temperature Superconducting Magnet for Pulsating Magnetic Field
    Korea Advanced Institute of Science and Technology, Mechanical Engineering Department, Daejeon
    34141, Korea, Republic of
    不详
    641-773, Korea, Republic of
    IEEE Trans Appl Supercond, 5
  • [44] Design and test of conduction-cooled high homogenous magnetic field superconducting magnet for gyrotron
    Wang, Qiuliang
    Dai, Yinming
    Zhao, Baozhi
    Hu, Xinning
    Wang, Houseng
    Lei, Yuanzhong
    Yan, Luguang
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2007, 17 (02) : 2319 - 2322
  • [45] A Study on the Design and Quench Protection of a Conduction-Cooled Magnet for a Superconducting Property Measurement System
    Choi, Sukjin
    Bae, Joon-Han
    Sohn, Myung-Hwan
    Park, Chan
    Lee, Ji-Kwang
    Choi, Kyeongdal
    Ko, Tae Kuk
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2011, 21 (03) : 2410 - 2414
  • [46] The Iseult/Inumac whole body 11.7 T MRI magnet design
    Schild, Th.
    Aubert, G.
    Berriaud, C.
    Bredy, Ph.
    Juster, F. P.
    Meuris, C.
    Nunio, F.
    Quettier, L.
    Rey, J. M.
    Vedrine, P.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2008, 18 (02) : 904 - 907
  • [47] Mechanical Design of the Iseult 11.7 T Whole Body MRI Magnet
    Nunio, F.
    Berriaud, C.
    Bredy, Ph.
    Schild, Th.
    Scola, L.
    Tellier, O.
    Vedrine, P.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2010, 20 (03) : 760 - 763
  • [48] Numerical simulation of quench protection for a 1.5T persistent mode MgB2 conduction-cooled MRI magnet
    Deissler, Robert J.
    Baig, Tanvir
    Poole, Charles
    Amin, Abdullah
    Doll, David
    Tomsic, Michael
    Martens, Michael
    SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2017, 30 (02):
  • [49] Electromagnetic Design of a 0.5 T REBCO MRI Magnet for Brain MRI Imaging
    Li, Da
    Ren, Yong
    Liu, Feng
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2024, 34 (07) : 1 - 7
  • [50] Development of a 12 T Conduction-Cooled Split-Pair Magnet With Crossing Warm Bore
    Chen, Shunzhong
    Sun, Wanshuo
    Xu, Ce
    Wang, Hui
    Sun, Jinshui
    Wang, Yaohui
    Dai, Yinming
    Cheng, Junsheng
    Wang, Qiuliang
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2025, 35 (01)