Mesoscale modelling of concrete tensile failure mechanism at high strain rates

At mesoscale, concrete may be regarded as a three-phase composite consisting of coarse aggregate, mortar matrix and interfacial transition zone (ITZ) between the aggregate and the mortar matrix. In the present paper, mesoscale model is adopted to analyze the dynamic tensile behaviour of concrete at...

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Main Authors: Zhou, X., Hao, Hong
Format: Journal Article
Published: Elsevier Limited 2008
Online Access:http://hdl.handle.net/20.500.11937/45444
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author Zhou, X.
Hao, Hong
author_facet Zhou, X.
Hao, Hong
author_sort Zhou, X.
building Curtin Institutional Repository
collection Online Access
description At mesoscale, concrete may be regarded as a three-phase composite consisting of coarse aggregate, mortar matrix and interfacial transition zone (ITZ) between the aggregate and the mortar matrix. In the present paper, mesoscale model is adopted to analyze the dynamic tensile behaviour of concrete at high strain rates; especially, the effects of the ITZ on the failure properties are analyzed. In the mesoscale model, to simplify the problem, the shape of the coarse aggregate is assumed to be circular and the ITZ zone is modelled as a thin boundary layer around the aggregate. Dynamic material properties and continuum damage mechanics theory are employed to simulate the material behaviour of the three phases. Numerical simulation of the concrete samples under tension at different strain rates are carried out. Different aggregate size, different aggregate distribution and different material properties are considered. Strain rate effect is also analyzed. From the numerical results, it is found that the dynamic failure (crack) pattern is highly affected by the aggregate distribution. It is also found that the properties of the interfacial transition zone significantly influence the failure mechanism and the tensile strength of concrete.
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institution Curtin University Malaysia
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publishDate 2008
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spelling curtin-20.500.11937-454442017-02-28T01:41:03Z Mesoscale modelling of concrete tensile failure mechanism at high strain rates Zhou, X. Hao, Hong At mesoscale, concrete may be regarded as a three-phase composite consisting of coarse aggregate, mortar matrix and interfacial transition zone (ITZ) between the aggregate and the mortar matrix. In the present paper, mesoscale model is adopted to analyze the dynamic tensile behaviour of concrete at high strain rates; especially, the effects of the ITZ on the failure properties are analyzed. In the mesoscale model, to simplify the problem, the shape of the coarse aggregate is assumed to be circular and the ITZ zone is modelled as a thin boundary layer around the aggregate. Dynamic material properties and continuum damage mechanics theory are employed to simulate the material behaviour of the three phases. Numerical simulation of the concrete samples under tension at different strain rates are carried out. Different aggregate size, different aggregate distribution and different material properties are considered. Strain rate effect is also analyzed. From the numerical results, it is found that the dynamic failure (crack) pattern is highly affected by the aggregate distribution. It is also found that the properties of the interfacial transition zone significantly influence the failure mechanism and the tensile strength of concrete. 2008 Journal Article http://hdl.handle.net/20.500.11937/45444 Elsevier Limited restricted
spellingShingle Zhou, X.
Hao, Hong
Mesoscale modelling of concrete tensile failure mechanism at high strain rates
title Mesoscale modelling of concrete tensile failure mechanism at high strain rates
title_full Mesoscale modelling of concrete tensile failure mechanism at high strain rates
title_fullStr Mesoscale modelling of concrete tensile failure mechanism at high strain rates
title_full_unstemmed Mesoscale modelling of concrete tensile failure mechanism at high strain rates
title_short Mesoscale modelling of concrete tensile failure mechanism at high strain rates
title_sort mesoscale modelling of concrete tensile failure mechanism at high strain rates
url http://hdl.handle.net/20.500.11937/45444