TY - JOUR
T1 - Thermophysical properties and eutectic growth of Fe-B-Nd-Tb-Y quinary alloy processed by electrostatic levitation
AU - Ma, Y.
AU - Zheng, Y. P.
AU - Liu, S. H.
AU - Hu, F. X.
AU - Zhai, W.
AU - Wei, B.
N1 - Publisher Copyright:
© 2025
PY - 2026/1/15
Y1 - 2026/1/15
N2 - Electrostatically levitated liquid Fe73.3B18.0Nd6.7Tb1.7Y0.3 quinary alloy was undercooled by 226 K (0.16 TL) to investigate thermophysical properties and eutectic structures. A roughly linear temperature dependence was found for the liquid state density, thermal expansion coefficient and the ratio of specific heat to emissivity. The diffusion coefficients of Nd, Tb and Y solutes in liquid alloy were estimated and exhibited exponential dependence on temperature. The growth velocity of primary τ1-(Nd,Tb,Y)2Fe14B phase displayed a power function with liquid undercooling, accompanied by the morphological transition from faceted coarse dendrites to nonfaceted equiaxed grains due to the weakened anisotropy. The regular (τ1+τ2-(Nd,Tb,Y)Fe4B4+ αFe) ternary eutectics were refined by the inhibited solute diffusion at larger undercoolings, or even transformed to irregular morphology due to the competitive nucleation and growth, which became the unique structure once undercooling exceeded 195 K. The reduced solute diffusion ability resulted in the enrichment of Tb in τ1 phase and Nd in τ2 phase at high undercoolings. The significant refinement of solidification microstructures and intrinsic hardness improvement of τ1 phase with higher Tb content synergistically enhanced the average alloy microhardness.
AB - Electrostatically levitated liquid Fe73.3B18.0Nd6.7Tb1.7Y0.3 quinary alloy was undercooled by 226 K (0.16 TL) to investigate thermophysical properties and eutectic structures. A roughly linear temperature dependence was found for the liquid state density, thermal expansion coefficient and the ratio of specific heat to emissivity. The diffusion coefficients of Nd, Tb and Y solutes in liquid alloy were estimated and exhibited exponential dependence on temperature. The growth velocity of primary τ1-(Nd,Tb,Y)2Fe14B phase displayed a power function with liquid undercooling, accompanied by the morphological transition from faceted coarse dendrites to nonfaceted equiaxed grains due to the weakened anisotropy. The regular (τ1+τ2-(Nd,Tb,Y)Fe4B4+ αFe) ternary eutectics were refined by the inhibited solute diffusion at larger undercoolings, or even transformed to irregular morphology due to the competitive nucleation and growth, which became the unique structure once undercooling exceeded 195 K. The reduced solute diffusion ability resulted in the enrichment of Tb in τ1 phase and Nd in τ2 phase at high undercoolings. The significant refinement of solidification microstructures and intrinsic hardness improvement of τ1 phase with higher Tb content synergistically enhanced the average alloy microhardness.
KW - Electrostatic levitation
KW - Fe-B-Nd-Tb-Y alloy
KW - Microhardness
KW - Rapid solidification microstructures
KW - Thermophysical properties
UR - https://www.scopus.com/pages/publications/105025598702
U2 - 10.1016/j.jallcom.2025.185790
DO - 10.1016/j.jallcom.2025.185790
M3 - 文章
AN - SCOPUS:105025598702
SN - 0925-8388
VL - 1050
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 185790
ER -