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中国物理学会期刊

    液态Fe-Nd-Y-B合金的热物理性质与静电悬浮快速凝固研究

    Thermophysical properties and rapid solidification mechanism of highly undercooled liquid Fe-Nd-Y-B alloy under electrostatic levitation condition

    CSTR: 32037.14.aps.74.20250904
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    • 采用静电悬浮技术研究了四元Fe 75.6Nd 10Y 9B 5.4合金的亚稳和稳定液态热物理性质及快速凝固规律, 其最大过冷度达到221 K (0.14 T L). 精确测定了液态合金密度、热膨胀系数和比热与辐射率之比随温度的变化规律. 分子动力学模拟表明, Nd和Y两种稀土元素扩散系数均随温度下降以指数形式减小, 但相同温度下前者扩散速率高于后者. 当过冷度为80—158 K时, 初生(Nd, Y) 2Fe 17相枝晶生长速度从3.8 升高至5.7 mm·s –1, 且晶粒尺寸显著细化. 同时, 包晶转变也被促进, τ 1-(Nd, Y) 2Fe 14B相体积分数增长至75%. 一旦过冷度达到180 K, 初生(Nd, Y) 2Fe 17相消失, τ 1相直接从合金熔体中形核, 且生长速度随过冷度由2.6 增大至11.0 mm·s –1. 形成焓计算结果表明, Y元素固溶可以提升初生(Nd, Y) 2Fe 17和包晶τ 1相的热力学稳定性, 所以两相内Y元素含量均显著高于Nd元素. 大过冷条件下, 扩散能力强的Nd元素在τ 1相内的含量略微升高, 而Y元素含量下降.

      The metastable and stable liquid state thermophysical properties and rapid solidification mechanism of quaternary Fe 75.6Nd 10Y 9B 5.4alloy with a maximum undercooling temperature of 221 K (0.14 T L) are investigated using electrostatic levitation technique. The measured results indicate that the density, thermal expansion coefficient and the ratio of specific heat to emissivity of the liquid alloy comply with linear functional relationship with temperature in the range of 1402–1618 K. Molecular dynamics (MD) simulations show that the diffusion coefficients of Nd and Y elements decrease exponentially with temperature decreasing, with the former exhibiting a larger diffusion coefficient at the same temperature. When the liquid undercooling rises from 80 to 158 K, the growth velocity of primary (Nd,Y) 2Fe 17phase dendrites increases from 3.8 to 5.7 mm·s –1, while exhibiting significant grain refinement effect. Meanwhile, the increased undercooling also promotes peritectic transformation, leading the volume fraction of peritectic τ 1-(Nd,Y) 2Fe 14B phase to reach up to 75%. Once the undercooling reaches 180 K, the former peritectic τ 1phase, rather than the primary (Nd,Y) 2Fe 17phase, becomes the leading phase, which nucleates and grows directly from the undercooled liquid alloy, and its growth velocity increases with undercooling from 2.6 to 11.0 mm·s –1. The calculation results of formation enthalpy show that the solid solution of the Y element can enhance the thermodynamic stability of the (Nd,Y) 2Fe 17phase and the τ 1phase, thereby explaining the reason why the content of Y element in both phases is significantly higher than that of Nd element. Nevertheless, the content of Nd element in the τ 1phase slightly increases because its diffusion ability is stronger than that of Y if undercooling is higher than 180 K.

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