• DocumentCode
    1338926
  • Title

    The Application of Accurate Calculation of Magnetic Field Intensity in 1.5-T Superconducting MRI Magnet Design

  • Author

    Zhongkui Feng ; Lankai Li ; Chunjie Gao ; Guang Zhu ; Yi Li ; Xian Li ; Yinming Dai ; Qiuliang Wang

  • Author_Institution
    Inst. of Electr. Eng., Beijing, China
  • Volume
    22
  • Issue
    6
  • fYear
    2012
  • Firstpage
    4402206
  • Lastpage
    4402206
  • Abstract
    Currently, when calculating the magnetic field generated by the solenoid coil of the superconducting wire wound, we assume that the coil cross section with a uniform current density, but actual current in superconducting wires (NbTi) in the form of a wire in channel is not evenly distributed, the current distribution only in the superconducting core, i.e., there is no current in copper, insulation, and filler, and this method of calculation will result in errors. In this paper, we model the superconducting cores of the 1.5-T superconducting magnetic resonance imaging (MRI) magnet to calculate accurate magnetic field intensity and inhomogeneity by helicoidal method in the diameter of spherical volume and find that inhomogeneity is eight times bigger than that calculated by spherical harmonic expansions, which cannot be accepted in design. Hence, in order to design a high-homogeneity MRI magnet, we amend the 1.5-T MRI magnet´s original parameters by an optimization algorithm through an original interface between OPERA-3D and MATLAB according to the accurate results.
  • Keywords
    biomedical MRI; critical current density (superconductivity); mathematics computing; medical computing; niobium alloys; optimisation; superconducting coils; superconducting magnets; titanium alloys; MATLAB; NbTi; OPERA-3D; coil cross section; helicoidal method; magnetic field intensity; magnetic flux density 1.5 T; magnetic held generation; optimization algorithm; solenoid coil; spherical harmonic expansions; spherical volume; superconducting MRI magnet design; superconducting core; superconducting magnetic resonance imaging magnet; superconducting wire wound; uniform current density; Algorithm design and analysis; Magnetic fields; Magnetic resonance imaging; Optimization; Superconducting materials; Accurate calculation; helicoidal method (HM); inhomogeneity; optimization algorithm; spherical harmonic expansions (SHE);
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/TASC.2012.2223464
  • Filename
    6359937