TY - JOUR
T1 - An adaptive clustering FE2 multiscale framework for heterogeneous materials with localized damage
AU - Li, Tianrui
AU - He, Chunwang
AU - Cao, Xiaofei
AU - Fang, Daining
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/9/29
Y1 - 2026/9/29
N2 - An adaptive clustering FE2 (ACFE2) method is developed to accelerate the multiscale damage and failure analysis of heterogeneous materials. Firstly, a feature vector which is composed by the strain components and damage rates of each macro integration point is applied for macro model reduction. Then based on the feature vector, an elbow-based k -means clustering method is used to find the optimal number of clusters for macrostructure in each numerical increment. Once local damage behavior appears, an adaptive local enhancement scheme is applied in the region where damage evolves rapidly, so that the corresponding elements are directly coupled with RVE calculations, improving the accuracy of localized damage prediction. By comparing with the experimental and numerical results, the accuracy of ACFE2 method for predicting the damage evolution of heterogeneous materials with various microstructures and microscale constituents is validated. Regarding the computational costs, the ACFE2 method is about 10-50 times more efficient than the traditional FE2 method, and 3-5 times more efficient than the k -means FE2 (KMFE2) method, which demonstrates a great improvement in computational efficiency for multiscale problems.
AB - An adaptive clustering FE2 (ACFE2) method is developed to accelerate the multiscale damage and failure analysis of heterogeneous materials. Firstly, a feature vector which is composed by the strain components and damage rates of each macro integration point is applied for macro model reduction. Then based on the feature vector, an elbow-based k -means clustering method is used to find the optimal number of clusters for macrostructure in each numerical increment. Once local damage behavior appears, an adaptive local enhancement scheme is applied in the region where damage evolves rapidly, so that the corresponding elements are directly coupled with RVE calculations, improving the accuracy of localized damage prediction. By comparing with the experimental and numerical results, the accuracy of ACFE2 method for predicting the damage evolution of heterogeneous materials with various microstructures and microscale constituents is validated. Regarding the computational costs, the ACFE2 method is about 10-50 times more efficient than the traditional FE2 method, and 3-5 times more efficient than the k -means FE2 (KMFE2) method, which demonstrates a great improvement in computational efficiency for multiscale problems.
KW - Clustering analysis
KW - Composites
KW - Damage behavior
KW - FE multiscale simulation
UR - https://www.scopus.com/pages/publications/105041671444
U2 - 10.1016/j.compscitech.2026.111738
DO - 10.1016/j.compscitech.2026.111738
M3 - Article
AN - SCOPUS:105041671444
SN - 0266-3538
VL - 284
JO - Composites Science and Technology
JF - Composites Science and Technology
M1 - 111738
ER -