Multiphase Reconstruction of Heterogeneous Materials Using Machine Learning and Quality of Connection Function

Author:

Hamidpour Pouria1,Araee Alireza1,Baniassadi Majid12,Garmestani Hamid23

Affiliation:

1. School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran 14155-6619, Iran

2. University of Strasbourg, CNRS, ICube UMR 7357, 67081 Strasbourg, France

3. School of Materials Science and Engineering, Georgia Institute of Technology, 771 Ferst Drive NW, Atlanta, GA 30332, USA

Abstract

Establishing accurate structure–property linkages and precise phase volume accuracy in 3D microstructure reconstruction of materials remains challenging, particularly with limited samples. This paper presents an optimized method for reconstructing 3D microstructures of various materials, including isotropic and anisotropic types with two and three phases, using convolutional occupancy networks and point clouds from inner layers of the microstructure. The method emphasizes precise phase representation and compatibility with point cloud data. A stage within the Quality of Connection Function (QCF) repetition loop optimizes the weights of the convolutional occupancy networks model to minimize error between the microstructure’s statistical properties and the reconstructive model. This model successfully reconstructs 3D representations from initial 2D serial images. Comparisons with screened Poisson surface reconstruction and local implicit grid methods demonstrate the model’s efficacy. The developed model proves suitable for high-quality 3D microstructure reconstruction, aiding in structure–property linkages and finite element analysis.

Publisher

MDPI AG

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