Effect of disordered pore distribution on the fracture of brittle porous media studied by bonded DEM

The mechanical properties of geo-materials, porous media, and cementing materials are inherently variable, owing to the presence of pores, cracks, and other microscale heterogeneities, known as Griffith flaws. In this study, we focused on the influence of disordered pore distribution on the mechanic...

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Main Authors: Quanshui Huang, Gang Ma, Takashi Matsushima, Wei Zhou, Mingchun Lin
Format: Article
Language:English
Published: Elsevier 2021-08-01
Series:Soils and Foundations
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0038080621000731
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spelling doaj-0fb701b4f39a4d648188a404e7f19b0f2021-08-02T04:38:11ZengElsevierSoils and Foundations2524-17882021-08-0161410031017Effect of disordered pore distribution on the fracture of brittle porous media studied by bonded DEMQuanshui Huang0Gang Ma1Takashi Matsushima2Wei Zhou3Mingchun Lin4State Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University, Wuhan 430072, Hubei, China; Key Laboratory of Rock Mechanics in Hydraulic Structural Engineering, Wuhan University, Ministry of Education, Wuhan 430072, ChinaState Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University, Wuhan 430072, Hubei, China; Key Laboratory of Rock Mechanics in Hydraulic Structural Engineering, Wuhan University, Ministry of Education, Wuhan 430072, China; Corresponding authors at: State Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University, Wuhan 430072, Hubei, China.Department of Engineering Mechanics and Energy, University of Tsukuba, Tsukuba 305-8573, JapanState Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University, Wuhan 430072, Hubei, China; Key Laboratory of Rock Mechanics in Hydraulic Structural Engineering, Wuhan University, Ministry of Education, Wuhan 430072, China; Corresponding authors at: State Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University, Wuhan 430072, Hubei, China.State Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University, Wuhan 430072, Hubei, China; Key Laboratory of Rock Mechanics in Hydraulic Structural Engineering, Wuhan University, Ministry of Education, Wuhan 430072, ChinaThe mechanical properties of geo-materials, porous media, and cementing materials are inherently variable, owing to the presence of pores, cracks, and other microscale heterogeneities, known as Griffith flaws. In this study, we focused on the influence of disordered pore distribution on the mechanical properties of bonded granular materials and performed simulations of uniaxial tensile testing through 2D Discrete Element Method (DEM). The sample was modeled in the form of an agglomeration of elementary balls with breakable bonds, while disordered pores were introduced by deleting a certain number of elementary balls from the initial dense ordered packing. We defined the pore disorder parameter as Dp, which specifies the degree of disorder, and applied uniaxial tension to various samples with different Dp. The simulation results demonstrated that the failure strength is inversely proportionate to the level of porosity and Dp, and that the heterogeneity of stress transmission also increases with Dp. The reduction of tensile strength in a highly disordered specimen (Dp = 2.0) reached its maximum value when the porosity was 0.274, while the reduction of the tensile stiffness dominated when the porosity was 0.339. Near the percolation threshold (referring to the porosity when strength or strength becomes zero), φc=0.527, both strength and stiffness were well described by the percolation theory. In addition, larger Dp lead to higher stress concentration, causing greater uncertainty of the failure strength. These findings help us to understand the influence of structural disorder over the mechanical properties of disordered porous materials.http://www.sciencedirect.com/science/article/pii/S0038080621000731Discrete element methodPore distributionBrittle porous mediaWeibull statisticsDisorder
collection DOAJ
language English
format Article
sources DOAJ
author Quanshui Huang
Gang Ma
Takashi Matsushima
Wei Zhou
Mingchun Lin
spellingShingle Quanshui Huang
Gang Ma
Takashi Matsushima
Wei Zhou
Mingchun Lin
Effect of disordered pore distribution on the fracture of brittle porous media studied by bonded DEM
Soils and Foundations
Discrete element method
Pore distribution
Brittle porous media
Weibull statistics
Disorder
author_facet Quanshui Huang
Gang Ma
Takashi Matsushima
Wei Zhou
Mingchun Lin
author_sort Quanshui Huang
title Effect of disordered pore distribution on the fracture of brittle porous media studied by bonded DEM
title_short Effect of disordered pore distribution on the fracture of brittle porous media studied by bonded DEM
title_full Effect of disordered pore distribution on the fracture of brittle porous media studied by bonded DEM
title_fullStr Effect of disordered pore distribution on the fracture of brittle porous media studied by bonded DEM
title_full_unstemmed Effect of disordered pore distribution on the fracture of brittle porous media studied by bonded DEM
title_sort effect of disordered pore distribution on the fracture of brittle porous media studied by bonded dem
publisher Elsevier
series Soils and Foundations
issn 2524-1788
publishDate 2021-08-01
description The mechanical properties of geo-materials, porous media, and cementing materials are inherently variable, owing to the presence of pores, cracks, and other microscale heterogeneities, known as Griffith flaws. In this study, we focused on the influence of disordered pore distribution on the mechanical properties of bonded granular materials and performed simulations of uniaxial tensile testing through 2D Discrete Element Method (DEM). The sample was modeled in the form of an agglomeration of elementary balls with breakable bonds, while disordered pores were introduced by deleting a certain number of elementary balls from the initial dense ordered packing. We defined the pore disorder parameter as Dp, which specifies the degree of disorder, and applied uniaxial tension to various samples with different Dp. The simulation results demonstrated that the failure strength is inversely proportionate to the level of porosity and Dp, and that the heterogeneity of stress transmission also increases with Dp. The reduction of tensile strength in a highly disordered specimen (Dp = 2.0) reached its maximum value when the porosity was 0.274, while the reduction of the tensile stiffness dominated when the porosity was 0.339. Near the percolation threshold (referring to the porosity when strength or strength becomes zero), φc=0.527, both strength and stiffness were well described by the percolation theory. In addition, larger Dp lead to higher stress concentration, causing greater uncertainty of the failure strength. These findings help us to understand the influence of structural disorder over the mechanical properties of disordered porous materials.
topic Discrete element method
Pore distribution
Brittle porous media
Weibull statistics
Disorder
url http://www.sciencedirect.com/science/article/pii/S0038080621000731
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