3D Meso-Scale-Analysis of Concrete Containing Defect Damages During Different Freeze-Thaw-Cycles (2022-10)¶
10.1016/j.conbuildmat.2022.129449
Miao Haibin, Guo Chao, Lu Zhengran, Chen Zhihua
Journal Article - Construction and Building Materials, Vol. 358
Abstract
The damage process of concrete containing air pore and aggregate gradation defects under freeze-thaw (FT) cycles was parametrically studied by an ABAQUS coupled thermo-mechanical mesoscale numerical analyses platform. It was a stochastic finite element model (SFEM) developed by Python script program. The effectiveness of mesoscale model was verified by comparing 96 concrete samples divided to 4 groups with air pore and aggregate defects exposed to 0 to 90 FT cycles. The damage function of concrete for FT cycles was described by Weibull distribution equations. The analyses showed that air pore defects had a significant impact on concrete mechanical characteristics under FT cycles. When FT cycle number (n) reached 90, the strength loss of specimens with no defect was about 37.5%. When air pore content was 5% with non-uniform grading of aggregate, the strength loss of specimen was 61.6%. This showed that FT cycle damage effect on concrete was obvious which was more prominent for higher values of n.
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BibTeX
@article{miao_guo_lu_chen.2022.3MSAoCCDDDDFTC,
author = "Haibin Miao and Chao Guo and Zhengran Lu and Zhihua Chen",
title = "3D Meso-Scale-Analysis of Concrete Containing Defect Damages During Different Freeze-Thaw-Cycles",
doi = "10.1016/j.conbuildmat.2022.129449",
year = "2022",
journal = "Construction and Building Materials",
volume = "358",
}
Formatted Citation
H. Miao, C. Guo, Z. Lu and Z. Chen, “3D Meso-Scale-Analysis of Concrete Containing Defect Damages During Different Freeze-Thaw-Cycles”, Construction and Building Materials, vol. 358, 2022, doi: 10.1016/j.conbuildmat.2022.129449.
Miao, Haibin, Chao Guo, Zhengran Lu, and Zhihua Chen. “3D Meso-Scale-Analysis of Concrete Containing Defect Damages During Different Freeze-Thaw-Cycles”. Construction and Building Materials 358 (2022). https://doi.org/10.1016/j.conbuildmat.2022.129449.