Analysis of Phase Formations and Mechanical Properties in Complex Concentrated Alloys by Machine Learning Approach

Fuente: arXiv
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Main Authors: Xiong, Jie, Shi, San-Qiang, Zhang, Tong-Yi
Format: Preprint
Published: 2020
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author Xiong, Jie
Shi, San-Qiang
Zhang, Tong-Yi
author_facet Xiong, Jie
Shi, San-Qiang
Zhang, Tong-Yi
contents The mechanical properties of complex concentrated alloys (CCAs) depend on their forming phases and corresponding structures, the prediction of the phase formation for a given CCA is essential to its discovery and applications. 541 sample were collected from previous studies, comprising 61 amorphous, 164 single-phase crystalline, and 361 multi-phases crystalline CCAs. We proposed three classification models to category and understand the phase selection of CCAS. Also, a two-objective regression model was constructed to predict the hardness and compressive yield stress of CCAs. All three classification models have accuracies higher than 85%, and correlation coefficient of random forest regression model is greater than 0.9 for both of two objectives. In addition, we proposed four descriptors via multi-task SISSO method to predict the mechanical properties of CCAs, the average correlation coefficient of SISSO models is higher than 0.85. The present work demonstrates the great potential of machine learning approach in the prediction of target properties in CCAs.
format Preprint
id arxiv_https___arxiv_org_abs_2008_08341
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Analysis of Phase Formations and Mechanical Properties in Complex Concentrated Alloys by Machine Learning Approach
Xiong, Jie
Shi, San-Qiang
Zhang, Tong-Yi
Applied Physics
Materials Science
The mechanical properties of complex concentrated alloys (CCAs) depend on their forming phases and corresponding structures, the prediction of the phase formation for a given CCA is essential to its discovery and applications. 541 sample were collected from previous studies, comprising 61 amorphous, 164 single-phase crystalline, and 361 multi-phases crystalline CCAs. We proposed three classification models to category and understand the phase selection of CCAS. Also, a two-objective regression model was constructed to predict the hardness and compressive yield stress of CCAs. All three classification models have accuracies higher than 85%, and correlation coefficient of random forest regression model is greater than 0.9 for both of two objectives. In addition, we proposed four descriptors via multi-task SISSO method to predict the mechanical properties of CCAs, the average correlation coefficient of SISSO models is higher than 0.85. The present work demonstrates the great potential of machine learning approach in the prediction of target properties in CCAs.
title Analysis of Phase Formations and Mechanical Properties in Complex Concentrated Alloys by Machine Learning Approach
topic Applied Physics
Materials Science
url https://arxiv.org/abs/2008.08341