Liquid state properties and rapid solidification mechanisms of ternary Fe–Dy–B alloy

Y Y. Ma Y Y. P. Zheng (School of Physical Science and Technology, Northwestern Polytechnical University 1 , Xi’an 710072,) L L. Hu (Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences 1 , Hefei 230031,) W W. Zhai (School of Physical Science and Technology, Northwestern Polytechnical University 1 , Xi’an 710072,) B B. Wei (School of Physical Science and Technology, Northwestern Polytechnical University 1 , Xi’an 710072,)

Abstract

The thermophysical properties and rapid solidification kinetics of stable and metastable liquid Fe84Dy8B8 alloy were investigated by electromagnetic levitation and drop tube techniques, which achieved maximum undercoolings of 215 K (0.14 TL) and 386 K (0.25 TL), respectively. The surface tension, viscosity, and diffusivity of liquid alloy were measured, and their correlations with liquid undercooling were derived, through which the activation energies for viscous flow and atomic diffusion were determined. At small undercoolings, the primary γFe phase growth velocity rose continuously as a power function. The increase of bulk undercooling not only significantly promoted the formation of pseudobinary eutectics by involving Dy2Fe17(B) as the main phase but also raised the volume fraction of peri-eutectics to some extent. At the intermediate undercooling regime, the Dy2Fe17(B) phase grew as the leading phase and was significantly refined with undercooling, and the following peri-eutectic transition was greatly accelerated, rendering the τ1 (Dy2Fe14B) dominant phase of solidification microstructure. When substantial undercoolings were achieved in alloy droplets, the τ1 phase nucleated and grew directly from the undercooled alloy and underwent a faceted to nonfaceted growth mode transition, whose maximum volume fraction reached up to 81%. This indicates that high undercooling rapid solidification is an effective approach to modulate the volume fraction of the τ1 phase by accelerating its peri-eutectic transition or even inducing its direct formation in rare earth alloys.

Article Details

Volume / Issue Vol. 137, Issue 21
Published June 07, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (5)

Y

Y. Ma

Y

Y. P. Zheng

School of Physical Science and Technology, Northwestern Polytechnical University 1 , Xi’an 710072,

L

L. Hu

Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences 1 , Hefei 230031,

W

W. Zhai

School of Physical Science and Technology, Northwestern Polytechnical University 1 , Xi’an 710072,

B

B. Wei

School of Physical Science and Technology, Northwestern Polytechnical University 1 , Xi’an 710072,