4.7 Article

Enhancing the coercivity, thermal stability and exchange coupling of nano-composite (Nd,Dy,Y)-Fe-B alloys with reduced Dy content by Zr addition

期刊

JOURNAL OF ALLOYS AND COMPOUNDS
卷 606, 期 -, 页码 44-49

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2014.04.016

关键词

Rare earth hard magnets; Nanocomposite alloys; Melt-spinning; Thermal stability

资金

  1. Natural Science Foundation of China [51174094]
  2. Guangdong Provincial Science and Technology Program [2012B091000005]
  3. State Key Laboratory for Advanced Metals and Materials [2011-ZD05]

向作者/读者索取更多资源

With the intention to reduce Dy content in NdFeB based magnets, 50 at.% Y substituting Dy was previously successfully employed to improve the remanence and thermal stability of the nanocomposite [Nd0.8Dy0.2](10)Fe84B6 alloy without the energy product reduction. In this work, introducing Zr into Y substituted alloys has enhanced the coercivity H-cj of the melt spun [Nd-0.8(Dy0.5Y0.5)(0.2)](10)Fe-84 XB6Zrx alloys. With increasing x value from 0 to 2, Hcj increased from 575 to 814 kA/m. Doping 2 at.% Zr reduced the absolute value of the temperature coefficient beta from 0.394 to 0.348%/degrees C. Good magnetic properties with Hcj of 797 kA/m, maximum energy product (BH)(max) of 131 kJ/m(3) and beta of -0.356%/degrees C were obtained for x = 1.5. Both the Curie temperature and lattice constants of the hard magnetic phase decreased with Zr addition, indicating that Zr atoms can substitute directly into the hard phase, although some atoms may also locate outside the lattice. Together with the analysis on the demagnetization curve and recoil loops, the results verified that a small amount of Zr can improve the coercivity, thermal stability and exchange coupling of nanocomposite NdDyYFeB alloys through enhancing the anisotropy and improving the microstructure. (c) 2014 Elsevier B.V. All rights reserved.

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