Three-Dimensional Modelling of Concrete Mix Structure for Numerical Stiffness Determination

A three dimensional (3-D) numerical model with explicit representation of two distinctive phases is used for precise prediction of the stiffness and Poisson’s ratio of concrete mixture, CM. Using ANSYS code, a 3-D macro scale numerical finite elements model was developed. The aggregates size, shape...

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Main Authors: Mofid Mahdi, Iqbal Marie
Format: Article
Language:English
Published: Pouyan Press 2018-07-01
Series:Computational Engineering and Physical Modeling
Subjects:
Online Access:http://www.jcepm.com/article_64894_d16e9dccc28003bfd6e900733b892737.pdf
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spelling doaj-c9a0661bb5a244d7bfbf89d4fcc04fa02021-06-07T04:43:35ZengPouyan PressComputational Engineering and Physical Modeling2588-69592588-69592018-07-0113152710.22115/cepm.2018.118218.101064894Three-Dimensional Modelling of Concrete Mix Structure for Numerical Stiffness DeterminationMofid Mahdi0Iqbal Marie1. Department of Mechanical Engineering, KFU, KSADepartment of Civil Engineering, the Hashemite University, JordanA three dimensional (3-D) numerical model with explicit representation of two distinctive phases is used for precise prediction of the stiffness and Poisson’s ratio of concrete mixture, CM. Using ANSYS code, a 3-D macro scale numerical finite elements model was developed. The aggregates size, shape and distribution are created randomly using enclosing spheres. The sizes of spheres determine the nominal sizes of stone aggregates. Uniform simplified regular spherical stones aggregates are also considered for comparison purposes. The obtained results are compared with experimental and numerical models ones from the literature. The comparison shows a reliable and reasonable agreement. The results are found to be bounded by the upper and the lower bound of the mixtures rule. The results show a close agreement with Hobbs model as well. Therefore, the finite element model perform well under induced compression loading for predicting the stiffness and the Poisson’s ratio of the concrete mix.http://www.jcepm.com/article_64894_d16e9dccc28003bfd6e900733b892737.pdfcompression stiffnessmacro-scale modelconcrete mixansysthree-dimensional fem modelling
collection DOAJ
language English
format Article
sources DOAJ
author Mofid Mahdi
Iqbal Marie
spellingShingle Mofid Mahdi
Iqbal Marie
Three-Dimensional Modelling of Concrete Mix Structure for Numerical Stiffness Determination
Computational Engineering and Physical Modeling
compression stiffness
macro-scale model
concrete mix
ansys
three-dimensional fem modelling
author_facet Mofid Mahdi
Iqbal Marie
author_sort Mofid Mahdi
title Three-Dimensional Modelling of Concrete Mix Structure for Numerical Stiffness Determination
title_short Three-Dimensional Modelling of Concrete Mix Structure for Numerical Stiffness Determination
title_full Three-Dimensional Modelling of Concrete Mix Structure for Numerical Stiffness Determination
title_fullStr Three-Dimensional Modelling of Concrete Mix Structure for Numerical Stiffness Determination
title_full_unstemmed Three-Dimensional Modelling of Concrete Mix Structure for Numerical Stiffness Determination
title_sort three-dimensional modelling of concrete mix structure for numerical stiffness determination
publisher Pouyan Press
series Computational Engineering and Physical Modeling
issn 2588-6959
2588-6959
publishDate 2018-07-01
description A three dimensional (3-D) numerical model with explicit representation of two distinctive phases is used for precise prediction of the stiffness and Poisson’s ratio of concrete mixture, CM. Using ANSYS code, a 3-D macro scale numerical finite elements model was developed. The aggregates size, shape and distribution are created randomly using enclosing spheres. The sizes of spheres determine the nominal sizes of stone aggregates. Uniform simplified regular spherical stones aggregates are also considered for comparison purposes. The obtained results are compared with experimental and numerical models ones from the literature. The comparison shows a reliable and reasonable agreement. The results are found to be bounded by the upper and the lower bound of the mixtures rule. The results show a close agreement with Hobbs model as well. Therefore, the finite element model perform well under induced compression loading for predicting the stiffness and the Poisson’s ratio of the concrete mix.
topic compression stiffness
macro-scale model
concrete mix
ansys
three-dimensional fem modelling
url http://www.jcepm.com/article_64894_d16e9dccc28003bfd6e900733b892737.pdf
work_keys_str_mv AT mofidmahdi threedimensionalmodellingofconcretemixstructurefornumericalstiffnessdetermination
AT iqbalmarie threedimensionalmodellingofconcretemixstructurefornumericalstiffnessdetermination
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