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Relation between Local Structure and Glass Forming Ability of Liquid Alloys

机译:液态合金的局部结构与玻璃形成能力的关系

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An attempt has been made to describe the glass forming ability (GFA) of liquid alloys, using the concepts of the short range order (SRO) and middle range order (MRO) characterizing the liquid structure. A new approach to obtain good GFA of liquid alloys is based on the following four main factors: (1) formation of new SRO and competitive correlation with two or more kinds of SROs for crystallization, (2) stabilization of dense random packing by interaction between different types of SRO, (3) formation of stable cluster (SC) or middle range order (MRO) by harmonious coupling of SROs, and (4) difference between SRO characterizing the liquid structure and the near-neighbor environment in the corresponding equilibrium crystalline phases. The atomic volume mismatch estimated from the cube of the atomic radius was found to be a close relation with the minimum solute concentration for glass formation. This empirical guideline enables us to provide the optimum solute concentration for good GFA in some ternary alloys. Model structures, denoted by Bernal type and the Chemical Order type, were again tested in the novel description for the glass structure as a function of solute concentration. We illustrated the related energetics of the completion between crystal embryo and different types of SRO. Recent systematic measurements also provide that thermal diffusivity of alloys in the liquid state may be a good indicator of their GFA.
机译:已经尝试使用表征液体结构的短程有序(SRO)和中程有序(MRO)的概念来描述液态合金的玻璃形成能力(GFA)。一种获得良好液态合金GFA的新方法基于以下四个主要因素:(1)形成新的SRO并与两种或更多种SRO竞争相关以进行结晶;(2)通过相互之间的相互作用来稳定致密无规堆积不同类型的SRO,(3)通过SRO的和谐耦合形成稳定簇(SC)或中程级(MRO),以及(4)SRO在相应的平衡晶体中表征液体结构和邻近环境的区别阶段。由原子半径的立方估算出的原子体积失配与玻璃形成的最小溶质浓度密切相关。该经验准则使我们能够为某些三元合金中的良好GFA提供最佳溶质浓度。在新颖的描述中,再次测试了由伯纳尔型和化学有序型表示的模型结构的玻璃结构随溶质浓度的变化。我们说明了晶体胚胎和不同类型的SRO之间完成的相关能量。最近的系统测量还提供了液态合金的热扩散率可能是其GFA的良好指标。

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