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Rapid solidification and liquid-phase separation of undercooled CoCrCuFexNi high-entropy alloys

机译:过冷的CoCrCuFexNi高熵合金的快速凝固和液相分离

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Fluxing and cyclic superheating technique was used to investigate the rapid solidification behavior of CoCrCuFexNi (x = 1.0, 1.5, 2.0, molar concentration) high-entropy alloys in this study. The microstructures of CoCrCuFexNi (x = 1.0, 1.5, 2.0) high-entropy alloys solidified at different undercoolings (Delta T) were investigated. Liquid-phase separation leading to Cu-rich and Cu-depleted regions, were obtained in the solidified microstructure from highly undercooled melt. This occurs when the melt undercooling exceeds a critical undercooling (Delta T-crit) of 160 K for CoCrCuFeNi, 190 K for CoCrCuFe1.5Ni and 293 K for CoCrCu-Fe2Ni alloy. However, typical dendrites and interdendritic regions were observed in rapid-solidified CoCrCuFexNi alloys prepared from melts with a small undercooling (Delta T < Delta T-crit). Conversely, a large amount of Cu-rich spheres and even egg-type structures were observed in alloys solidified from melts with large degree of undercooling, Delta T in excess of the critical value, Delta T-crit. A large amount of Cu-rich nano-phases were found in the matrix, possibly, due to the precipitation of Cu-rich phase from the supersaturated solid solution obtained during solidification. The positive enthalpies of mixing between Cu and the other elements in the multi-component alloys resulted in the occurrence of liquid-phase separation prior to the liquid-solid transformation starts. The sluggish diffusion effect of high-entropy alloys and rapid solidification play an important part in the precipitation of nanophase during the solid-state transformation in the Cu-based matrix. Similar to other immiscible alloys, liquid-phase separation occurred when a critical undercooling was exceeded. Differently, nanophases were found in the microstructures of multi-component CoCrCuFexNi (x = 1.0, 1.5, 2.0) alloys. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在本研究中,采用熔焊和循环过热技术研究了CoCrCuFexNi(x = 1.0、1.5、2.0,摩尔浓度)高熵合金的快速凝固行为。研究了在不同的过冷度(ΔT)下凝固的CoCrCuFexNi(x = 1.0,1.5,2.0)高熵合金的显微组织。通过高度过冷的熔体,在凝固的微观结构中获得了导致富铜和贫铜区域的液相分离。当熔体过冷超过CoCrCuFeNi的临界过冷(ΔT临界)为160 K,CoCrCuFe1.5Ni的临界过冷(ΔT临界值)为190 K,CoCrCu-Fe2Ni合金的临界过冷(ΔT临界值)为293 K时,就会发生这种情况。然而,在由小的过冷度(ΔT<ΔT临界)的熔体制备的快速凝固的CoCrCuFexNi合金中观察到典型的枝晶和枝晶间区域。相反,在由过冷度很大的熔体凝固的合金中,观察到大量的富铜球甚至蛋型结构,ΔT超过临界值ΔT临界值。在基质中发现了大量的富铜纳米相,这可能是由于富铜相从凝固过程中获得的过饱和固溶体中沉淀出来的缘故。在多组分合金中,Cu与其他元素之间的正混合焓导致在液-固转变开始之前发生液相分离。高熵合金的缓慢扩散效应和快速凝固在铜基基体的固相转变过程中的纳米相沉淀中起重要作用。与其他不溶混合金相似,当超过临界过冷度时,就会发生液相分离。不同地,在多组分CoCrCuFexNi(x = 1.0,1.5,2.0)合金的微观结构中发现了纳米相。 (C)2016 Elsevier Ltd.保留所有权利。

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