• DocumentCode
    38179
  • Title

    Magnetic and Microstructural Characteristics of a DyF _{3} Dip-Coated Nd-Fe-B Sintered Magnet

  • Author

    Kyoung-Hoon Bae ; Tae-Hoon Kim ; Seong-Rae Lee ; Seok NamKung ; Tae-Suk Jang

  • Author_Institution
    Dept. of Mater. Sci. & Eng., Korea Univ., Seoul, South Korea
  • Volume
    49
  • Issue
    7
  • fYear
    2013
  • fDate
    Jul-13
  • Firstpage
    3251
  • Lastpage
    3254
  • Abstract
    We investigated the microstructural and magnetic property changes of DyF3 dip-coated Nd-Fe-B sintered magnets as a function of the first post-sintering annealing (PSA) temperature and clarified the optimum first PSA temperature for the dip-coating process. Coercivity increased (from 26.7 to 29.06 kOe) with increasing first PSA temperature (from 700 to 900°C) owing to the increased diffusion depth of the Dy atoms. In the diffused region, the formation of the rare earth-rich phase (Nd-Dy-O) was suppressed and the core-shell microstructure was developed as a result of the DyF3 dip-coating process. However, coercivity decreased when the samples were annealed at 950°C because h-Nd2O3 phases were formed in the Cu-rich triple junction phase and the grain boundary phase. By contrast, the C-Nd2O3 phase, which is closely related to coercivity enhancement after second PSA, was formed in the magnet annealed at 900°C. The result fulfilled our basic aim of utilizing the DyF3 dip-coating process in order to enhance the coercivity of Nd-Fe-B sintered magnets without remanence reduction.
  • Keywords
    annealing; boron alloys; coercive force; diffusion; dip coating; dysprosium compounds; grain boundaries; iron alloys; neodymium alloys; sintering; Cu-rich triple junction phase; Dy atoms; Nd-Fe-B sintered magnet coercivity; NdFeB-DyF3; coercivity enhancement; core-shell microstructure; diffused region; diffusion depth; dip-coated Nd-Fe-B sintered magnet; dip-coating process; grain boundary phase; magnetic characteristics; magnetic property change; microstructural characteristics; microstructural property change; optimum first post-sintering annealing temperature; rare earth-rich phase formation; temperature 700 degC to 900 degC; temperature 950 degC; Annealing; Coercive force; Magnetic cores; Magnetic domains; Magnetic resonance imaging; Magnetic tunneling; Core-shell microstructure; Dy diffusion; DyF $_{3}$ dip-coating process; Nd-Fe-B sintered magnets;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2013.2247574
  • Filename
    6558924