Machine learning of phases and mechanical properties in complex concentrated alloys

被引:108
作者
Xiong, Jie [2 ,3 ]
Shi, San-Qiang [2 ,3 ]
Zhang, Tong-Yi [1 ,4 ]
机构
[1] Harbin Inst Technol, Sch Mat Sci & Engn, Shenzhen, Peoples R China
[2] Hong Kong Polytech Univ, Dept Mech Engn, Hong Kong, Peoples R China
[3] Hong Kong Polytech Univ, Shenzhen Res Inst, Shenzhen, Peoples R China
[4] Shanghai Univ, Mat Genome Inst, Shanghai, Peoples R China
来源
JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY | 2021年 / 87卷
基金
国家重点研发计划;
关键词
Materials informatics; SHAP; Complex concentrated alloys; High entropy alloys; HIGH-ENTROPY ALLOYS; ATOMIC SIZE DIFFERENCE; SOLID-SOLUTION PHASE; TENSILE PROPERTIES; ELASTIC PROPERTIES; AL ADDITION; AS-CAST; MICROSTRUCTURE; STABILITY; PREDICTION;
D O I
10.1016/j.jmst.2021.01.054
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The mechanical properties of complex concentrated alloys (CCAs) depend on their formed phases and corresponding microstructures. The data-driven prediction of the phase formation and associated mechanical properties is essential to discovering novel CCAs. The present work collects 557 samples of various chemical compositions, comprising 61 amorphous, 167 single-phase crystalline, and 329 multiphases crystalline CCAs. Three classification models are developed with high accuracies to category and understand the formed phases of CCAs. Also, two regression models are constructed to predict the hardness and ultimate tensile strength of CCAs, and the correlation coefficient of the random forest regression model is greater than 0.9 for both of two targeted properties. Furthermore, the Shapley additive explanation (SHAP) values are calculated, and accordingly four most important features are identified. A significant finding in the SHAP values is that there exists a critical value in each of the top four features, which provides an easy and fast assessment in the design of improved mechanical properties of CCAs. The present work demonstrates the great potential of machine learning in the design of advanced CCAs. (C) 2021 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.
引用
收藏
页码:133 / 142
页数:10
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