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Fracture Behavior and Energy Analysis of 3D Concrete Mesostructure under Uniaxial Compression

In order to investigate the fracture behavior of concrete mesostructure and reveal the inner failure mechanisms which are hard to obtain from experiments, we develop a 3D numerical model based on the Voronoi tessellation and cohesive elements. Specifically, the Voronoi tessellation is used to genera...

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Autores principales: Huang, Yiqun, Hu, Shaowei, Gu, Zi, Sun, Yueyang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6631847/
https://www.ncbi.nlm.nih.gov/pubmed/31207983
http://dx.doi.org/10.3390/ma12121929
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author Huang, Yiqun
Hu, Shaowei
Gu, Zi
Sun, Yueyang
author_facet Huang, Yiqun
Hu, Shaowei
Gu, Zi
Sun, Yueyang
author_sort Huang, Yiqun
collection PubMed
description In order to investigate the fracture behavior of concrete mesostructure and reveal the inner failure mechanisms which are hard to obtain from experiments, we develop a 3D numerical model based on the Voronoi tessellation and cohesive elements. Specifically, the Voronoi tessellation is used to generate the aggregates, and the cohesive elements are applied to the interface transition zone (ITZ) and the potential fracture surfaces in the cement matrix. Meanwhile, the mechanical behavior of the fracture surfaces is described by a modified constitutive which considers the slips and friction between fracture surfaces. Through comparing with the experiments, the simulated results show that our model can accurately characterize the fracture pattern, fracture propagation path, and mechanical behaviors of concrete. In addition, we found that the friction on the loading surfaces has a significant effect on the fracture pattern and the strength of concrete. The specimens with low-friction loading surfaces are crushed into separate fragments whereas those with high-friction loading surfaces still remain relatively complete. Also, the strength of concrete decreases with the increase of the specimen height in the high friction-loading surfaces condition. Further, the energy analysis was applied to estimate the restraint impact of loading surfaces restraint on the compressive strength of concrete. It shows that the proportion of the friction work increases with the increase of the restraint degree of loading surfaces, which finally causes a higher compressive strength. Generally, based on the proposed model, we can characterize the complicated fracture behavior of concrete mesostructure, and estimate the inner fracture mode through extracting and analyzing the energies inside the cohesive elements.
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spelling pubmed-66318472019-08-19 Fracture Behavior and Energy Analysis of 3D Concrete Mesostructure under Uniaxial Compression Huang, Yiqun Hu, Shaowei Gu, Zi Sun, Yueyang Materials (Basel) Article In order to investigate the fracture behavior of concrete mesostructure and reveal the inner failure mechanisms which are hard to obtain from experiments, we develop a 3D numerical model based on the Voronoi tessellation and cohesive elements. Specifically, the Voronoi tessellation is used to generate the aggregates, and the cohesive elements are applied to the interface transition zone (ITZ) and the potential fracture surfaces in the cement matrix. Meanwhile, the mechanical behavior of the fracture surfaces is described by a modified constitutive which considers the slips and friction between fracture surfaces. Through comparing with the experiments, the simulated results show that our model can accurately characterize the fracture pattern, fracture propagation path, and mechanical behaviors of concrete. In addition, we found that the friction on the loading surfaces has a significant effect on the fracture pattern and the strength of concrete. The specimens with low-friction loading surfaces are crushed into separate fragments whereas those with high-friction loading surfaces still remain relatively complete. Also, the strength of concrete decreases with the increase of the specimen height in the high friction-loading surfaces condition. Further, the energy analysis was applied to estimate the restraint impact of loading surfaces restraint on the compressive strength of concrete. It shows that the proportion of the friction work increases with the increase of the restraint degree of loading surfaces, which finally causes a higher compressive strength. Generally, based on the proposed model, we can characterize the complicated fracture behavior of concrete mesostructure, and estimate the inner fracture mode through extracting and analyzing the energies inside the cohesive elements. MDPI 2019-06-14 /pmc/articles/PMC6631847/ /pubmed/31207983 http://dx.doi.org/10.3390/ma12121929 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Huang, Yiqun
Hu, Shaowei
Gu, Zi
Sun, Yueyang
Fracture Behavior and Energy Analysis of 3D Concrete Mesostructure under Uniaxial Compression
title Fracture Behavior and Energy Analysis of 3D Concrete Mesostructure under Uniaxial Compression
title_full Fracture Behavior and Energy Analysis of 3D Concrete Mesostructure under Uniaxial Compression
title_fullStr Fracture Behavior and Energy Analysis of 3D Concrete Mesostructure under Uniaxial Compression
title_full_unstemmed Fracture Behavior and Energy Analysis of 3D Concrete Mesostructure under Uniaxial Compression
title_short Fracture Behavior and Energy Analysis of 3D Concrete Mesostructure under Uniaxial Compression
title_sort fracture behavior and energy analysis of 3d concrete mesostructure under uniaxial compression
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6631847/
https://www.ncbi.nlm.nih.gov/pubmed/31207983
http://dx.doi.org/10.3390/ma12121929
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