• DocumentCode
    1258827
  • Title

    Finite element modeling of nanocomposite magnets

  • Author

    Schrefl, Thomas ; Fidler, Josef

  • Author_Institution
    Inst. of Appl. & Tech. Phys., Tech. Univ. Wien, Austria
  • Volume
    35
  • Issue
    5
  • fYear
    1999
  • fDate
    9/1/1999 12:00:00 AM
  • Firstpage
    3223
  • Lastpage
    3228
  • Abstract
    Finite element modeling treats magnetization processes within the framework of micromagnetic theory, taking into account the complex microstructure of a magnet. The numerical integration of the Gilbert equation of motion provides the time evolution of the magnetization and thus shows how reversed domains nucleate and expand. The numerical results of static micromagnetic calculations reveal the influence of the intrinsic magnetic properties on the remanence and the coercive field of nanocomposite Nd2Fe14B/α-Fe/Fe3B magnets. An increase of the hard phase anisotropy of only 8% increases the coercive field from 340 kA/m to 450 kA/m in two phase Nd2Fe14B/α-Fe magnets. This effect becomes less pronounced with increasing Fe3B content. In two phase Nd 2Fe14B/Fe3B, the reduction of the soft phase magnetization and/or the soft phase exchange constant leads to an improvement of the coercive field without a significant loss in remanence. The magnetostatic interactions between the magnetic particles of bonded, nanocomposite magnets slightly reduce the remanence and the coercive field
  • Keywords
    boron alloys; coercive force; exchange interactions (electron); ferromagnetic materials; finite element analysis; iron; iron alloys; magnetic particles; magnetisation reversal; nanostructured materials; neodymium alloys; permanent magnets; remanence; soft magnetic materials; Fe3B content; Gilbert equation of motion; Nd2Fe14B-Fe; Nd2Fe14B-Fe3B; Nd2Fe14B/Fe3B; coercive field; complex microstructure; finite element modeling; hard phase anisotropy; intrinsic magnetic properties; magnetic particles; magnetization processes; magnetostatic interactions; micromagnetic theory; nanocomposite Nd2Fe14B/α-Fe/Fe3 B magnets; nanocomposite magnets; remanence; reversed domain; soft phase exchange constant; soft phase magnetization; static micromagnetic calculations; time evolution; two phase Nd2Fe14B/α-Fe magnets; Anisotropic magnetoresistance; Equations; Finite element methods; Magnetic properties; Magnetization processes; Magnets; Micromagnetics; Microstructure; Neodymium; Remanence;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.800483
  • Filename
    800483