An Estimation Approach for the Effective Elastic Modulus of Lightweight Bulk Filling Material with Compressible Inclusions and Imperfect Interfaces

In this study, an approach is developed to estimate the density and effective elastic modulus of a lightweight bulk filling material made up of expanded polystyrene (EPS) and cement-reinforced clay (matrix). First, a representative volume element (RVE) is composed of cell A (an EPS and matrix) and c...

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Main Authors: Chengxuan Li, Jianguo Wang, Fakai Dou
Format: Article
Language:English
Published: MDPI AG 2020-08-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/13/16/3563
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spelling doaj-9565de95857b4a66a5948ac34ba6119c2020-11-25T02:42:42ZengMDPI AGMaterials1996-19442020-08-01133563356310.3390/ma13163563An Estimation Approach for the Effective Elastic Modulus of Lightweight Bulk Filling Material with Compressible Inclusions and Imperfect InterfacesChengxuan Li0Jianguo Wang1Fakai Dou2School of Mechanics and Civil Engineering, China University of Mining and Technology, Xuzhou 221116, ChinaSchool of Mechanics and Civil Engineering, China University of Mining and Technology, Xuzhou 221116, ChinaState Key Laboratory for Geomechanics and Deep Underground Engineering, China University of Mining and Technology, Xuzhou 221116, ChinaIn this study, an approach is developed to estimate the density and effective elastic modulus of a lightweight bulk filling material made up of expanded polystyrene (EPS) and cement-reinforced clay (matrix). First, a representative volume element (RVE) is composed of cell A (an EPS and matrix) and cell B (matrix only). Then, an elastic interface is introduced to describe the discontinuity of displacement at the interface between EPS beads and matrix. Third, an Eshelby compliance tensor is modified in cell A to include the effects of imperfect interface and the compressibility of EPS beads. Finally, the approach for the density and effective elastic modulus of the EPS beads mixed cement-reinforced clay is verified with experimental data. The compressibility ratio of lightweight clay is compared under different confining pressures and curing times. It is found that the imperfect interface has salient impacts on the effective elastic modulus with the increase of volume fraction of inclusions. The interface parameters (<i>α</i> and <i>β</i>) vary with curing time and confining pressure. At the same curing time, the parameter <i>α</i> is almost constant regardless of confining pressure but the parameter <i>β</i> changes with confining pressure. The compressibility ratio is smaller for longer curing time if the confining pressure is constant.https://www.mdpi.com/1996-1944/13/16/3563lightweight materialmean field homogenizationexpended polystyrene beadsimperfect interfacedensityeffective elastic modulus
collection DOAJ
language English
format Article
sources DOAJ
author Chengxuan Li
Jianguo Wang
Fakai Dou
spellingShingle Chengxuan Li
Jianguo Wang
Fakai Dou
An Estimation Approach for the Effective Elastic Modulus of Lightweight Bulk Filling Material with Compressible Inclusions and Imperfect Interfaces
Materials
lightweight material
mean field homogenization
expended polystyrene beads
imperfect interface
density
effective elastic modulus
author_facet Chengxuan Li
Jianguo Wang
Fakai Dou
author_sort Chengxuan Li
title An Estimation Approach for the Effective Elastic Modulus of Lightweight Bulk Filling Material with Compressible Inclusions and Imperfect Interfaces
title_short An Estimation Approach for the Effective Elastic Modulus of Lightweight Bulk Filling Material with Compressible Inclusions and Imperfect Interfaces
title_full An Estimation Approach for the Effective Elastic Modulus of Lightweight Bulk Filling Material with Compressible Inclusions and Imperfect Interfaces
title_fullStr An Estimation Approach for the Effective Elastic Modulus of Lightweight Bulk Filling Material with Compressible Inclusions and Imperfect Interfaces
title_full_unstemmed An Estimation Approach for the Effective Elastic Modulus of Lightweight Bulk Filling Material with Compressible Inclusions and Imperfect Interfaces
title_sort estimation approach for the effective elastic modulus of lightweight bulk filling material with compressible inclusions and imperfect interfaces
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-08-01
description In this study, an approach is developed to estimate the density and effective elastic modulus of a lightweight bulk filling material made up of expanded polystyrene (EPS) and cement-reinforced clay (matrix). First, a representative volume element (RVE) is composed of cell A (an EPS and matrix) and cell B (matrix only). Then, an elastic interface is introduced to describe the discontinuity of displacement at the interface between EPS beads and matrix. Third, an Eshelby compliance tensor is modified in cell A to include the effects of imperfect interface and the compressibility of EPS beads. Finally, the approach for the density and effective elastic modulus of the EPS beads mixed cement-reinforced clay is verified with experimental data. The compressibility ratio of lightweight clay is compared under different confining pressures and curing times. It is found that the imperfect interface has salient impacts on the effective elastic modulus with the increase of volume fraction of inclusions. The interface parameters (<i>α</i> and <i>β</i>) vary with curing time and confining pressure. At the same curing time, the parameter <i>α</i> is almost constant regardless of confining pressure but the parameter <i>β</i> changes with confining pressure. The compressibility ratio is smaller for longer curing time if the confining pressure is constant.
topic lightweight material
mean field homogenization
expended polystyrene beads
imperfect interface
density
effective elastic modulus
url https://www.mdpi.com/1996-1944/13/16/3563
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