• DocumentCode
    1532346
  • Title

    Evolution of microstructure, microchemistry and coercivity in 2.17 type Sm-Co magnets with heat treatment

  • Author

    Zhang, Y. ; Tang, W. ; Hadjipanayis, G.C. ; Chen, Ci ; Nelson, C. ; Krishnan, K.

  • Author_Institution
    Dept. of Phys. & Astron., Delaware Univ., Newark, DE, USA
  • Volume
    37
  • Issue
    4
  • fYear
    2001
  • fDate
    7/1/2001 12:00:00 AM
  • Firstpage
    2525
  • Lastpage
    2527
  • Abstract
    A systematic study has been undertaken to understand the evolution of microstructure, microchemistry, and coercivity of sintered Sm(CobalCu0.06Fe0.015Zr0.027 )6.4 magnets with heat treatment using magnetometry, transmission electron microscopy, Lorentz microscopy, and nanoprobe chemical analysis. In general, the homogenized and quenched Sm(CobalCu0.06Fe0.015Zr0.027 )6.4 magnets have a featureless microstructure with the 2:17 hexagonal structure. During isothermal aging at 700-850°C, the 1:5 nuclei precipitate and then coalesce and start forming the cellular structure with 2:17 rhombohedral cells surrounded by 1:5 hexagonal cell boundaries. Uniform cellular and lamellar structures are formed after 2 hours of isothermal aging, and both the cell size and density of lamella phase slightly increase with longer aging. Nanoprobe chemical analysis shows that the Cu content in 1:5 cell boundaries increases during the slow cooling to lower temperatures, reaching a maximum value around 500°C, which is consistent with the development of coercivity. Also the Cu content in the triple cell boundary junctions is twice as much as the amount at the regular cell boundaries regardless of cell size and boundary width. Lorentz microscopy indicates that the triple cell boundary junctions may play a major role in domain wall pinning
  • Keywords
    ageing; cobalt alloys; coercive force; ferromagnetic materials; heat treatment; magnetic domain walls; permanent magnets; samarium alloys; transmission electron microscopy; 2.17 type Sm-Co sintered magnet; 500 C; 700 to 850 C; Lorentz microscopy; Sm(CobalCu0.06Fe0.015Zr 0.027)6.4; Sm(CoCuFeZr)6.4; Sm2Co17; cellular structure; coercivity; domain wall pinning; heat treatment; hexagonal structure; homogenization; isothermal aging; lamella phase; magnetometry; microchemistry; microstructure; nanoprobe chemical analysis; nucleation; precipitation; quenching; rhombohedral phase; transmission electron microscopy; triple cell boundary junction; Aging; Chemical analysis; Coercive force; Iron; Isothermal processes; Magnetic force microscopy; Magnets; Microstructure; Transmission electron microscopy; Zirconium;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.951223
  • Filename
    951223