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An informatics guided classification of miscible and immiscible binary alloy systems

机译:信息学指导的可混溶和不可混溶二元合金系统分类

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摘要

The classification of miscible and immiscible systems of binary alloys plays a critical role in the design of multicomponent alloys. By mining data from hundreds of experimental phase diagrams, and thousands of thermodynamic data sets from experiments and high-throughput first-principles (HTFP) calculations, we have obtained a comprehensive classification of alloying behavior for 813 binary alloy systems consisting of transition and lanthanide metals. Among several physics-based descriptors, the slightly modified Pettifor chemical scale provides a unique two-dimensional map that divides the miscible and immiscible systems into distinctly clustered regions. Based on an artificial neural network algorithm and elemental similarity, the miscibility of the unknown systems is further predicted and a complete miscibility map is thus obtained. Impressively, the classification by the miscibility map yields a robust validation on the capability of the well-known Miedema’s theory (95% agreement) and shows good agreement with the HTFP method (90% agreement). Our results demonstrate that a state-of-the-art physics-guided data mining can provide an efficient pathway for knowledge discovery in the next generation of materials design.
机译:二元合金的可混溶和不可混溶系统的分类在多组分合金的设计中起着至关重要的作用。通过挖掘数百个实验相图的数据以及来自实验和高通量第一性原理(HTFP)计算的数千个热力学数据集,我们获得了由过渡金属和镧系金属组成的813种二元合金体系合金化行为的综合分类。 。在几种基于物理学的描述符中,经过稍微修改的Pettifor化学标度提供了一个独特的二维图,该图将可混溶和不可混溶的系统划分为明显聚集的区域。基于人工神经网络算法和元素相似度,进一步预测了未知系统的相容性,从而获得了完整的相容性图。令人印象深刻的是,通过可混溶图进行的分类对公认的Miedema理论(95%一致)的能力进行了强有力的验证,并显示了与HTFP方法(90%一致)的良好一致性。我们的结果表明,最新的物理指导数据挖掘可以为下一代材料设计中的知识发现提供有效的途径。

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