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Liquid-liquid phase separation of freely falling undercooled ternary Fe-Cu-Sn alloy

机译:自由落体过冷三元Fe-Cu-Sn合金的液-液相分离

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摘要

The active modulation and control of the liquid phase separation for high-temperature metallic systems are still challenging the development of advanced immiscible alloys. Here we present an attempt to manipulate the dynamic process of liquid-liquid phase separation for ternary Fe47.5Cu47.5Sn5 alloy. It was firstly dispersed into numerous droplets with 66 ~ 810 μm diameters and then highly undercooled and rapidly solidified under the containerless microgravity condition inside drop tube. 3-D phase field simulation was performed to explore the kinetic evolution of liquid phase separation. Through regulating the combined effects of undercooling level, phase separation time and Marangoni migration, three types of separation patterns were yielded: monotectic cell, core shell and dispersive structures. The two-layer core-shell morphology proved to be the most stable separation configuration owing to its lowest chemical potential. Whereas the monotectic cell and dispersive microstructures were both thermodynamically metastable transition states because of their highly active energy. The Sn solute partition profiles of Fe-rich core and Cu-rich shell in core-shell structures varied only slightly with cooling rate.
机译:高温金属系统的液相分离的主动调制和控制仍在挑战先进的不混溶合金的发展。在这里,我们提出一种尝试来操纵三元Fe47.5Cu47.5Sn5合金的液相-液相分离的动态过程。它首先被分散成许多直径为66〜810μm的液滴,然后在滴管内的无容器微重力条件下高度过冷并迅速固化。进行了3-D相场模拟,以探索液相分离的动力学演化。通过调节过冷度,相分离时间和马兰戈尼迁移的综合影响,得出了三种类型的分离模式:单晶胞,核壳和分散结构。两层核-壳形态由于其化学势最低而被证明是最稳定的分离构型。而单晶的细胞和分散的微结构由于它们的高活性能量而均为热力学亚稳态的过渡态。芯-壳结构中富铁芯和富铜壳的Sn溶质分配曲线仅随冷却速率而略有变化。

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