• DocumentCode
    1247369
  • Title

    Temperature stability of magnetic field-induced strain and field-controlled shape memory effect on Ni52Mn16.4Fe8Ga23.6 single crystals

  • Author

    Cui, Y.T. ; Liu, Z.H. ; Zhang, M. ; Liu, G.D. ; Li, Y.X. ; Wang, W.L. ; Wu, G.H.

  • Author_Institution
    State Key Lab. for Magnetism, Chinese Acad. of Sci., Beijing, China
  • Volume
    41
  • Issue
    3
  • fYear
    2005
  • fDate
    3/1/2005 12:00:00 AM
  • Firstpage
    1086
  • Lastpage
    1088
  • Abstract
    The temperature dependence of the magnetic field-induced strain (MFIS) and the field-controlled shape memory effect in Ni52Mn16.4Fe8Ga23.6 single crystals were investigated by measuring the MFIS and measuring the magnetic field-enhanced transformation strain with a field bias applied in the [001] and [010] directions of the parent phase, respectively. The results show that such material combined with the martensitic transformation can product large field-enhanced transformation strain and large MFIS. The strain accompanying the martensitic transformation is -1.61% in zero field and can be enhanced to -3.30% by a field of 960 kA/m. A MFIS of 1.04% has been induced along [001] in unstressed crystals with saturated magnetic field of 600 kA/m applied along the same direction at near martensitic transformation temperature. It was found that the MFIS is almost temperature independent; the maximum decrease of the saturated MFIS is less than 10%, from 265 K to 100 K. This well-behaved temperature response makes this alloy particularly valuable for industrial and military smart actuators and transducers. Furthermore, it was found that the direction in which the MFIS has the largest value is always the [001], namely, the growth direction of the crystals.
  • Keywords
    ferromagnetic materials; gallium alloys; iron alloys; magnetic transition temperature; magnetomechanical effects; manganese alloys; martensitic transformations; nickel alloys; shape memory effects; Ni52Mn16.4Fe8Ga23.6; Ni52Mn16.4Fe8Ga23.6 single crystals; field-controlled shape memory effect; magnetic field-enhanced transformation strain; magnetic field-induced strain; martensitic phase transformation; near martensitic transformation temperature; saturated magnetic field; temperature response; temperature stability; Crystalline materials; Crystals; Iron; Magnetic field induced strain; Magnetic field measurement; Phase measurement; Shape measurement; Stability; Strain measurement; Temperature dependence; Magnetic field-induced strain; martensitic phase transformation; shape memory effect; temperature stability;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2004.829289
  • Filename
    1406096