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Multiscale Modeling of Elastic Properties of Sustainable Concretes by Microstructural-Based Micromechanics
Author(s) -
Vahid Zanjani Zadeh,
Christopher P. Bobko
Publication year - 2014
Publication title -
journal of composites
Language(s) - English
Resource type - Journals
eISSN - 2356-7252
pISSN - 2314-5978
DOI - 10.1155/2014/758626
Subject(s) - micromechanics , materials science , nanoindentation , homogenization (climate) , stiffness , multiscale modeling , composite material , nanoscopic scale , material properties , representative elementary volume , microstructure , nanotechnology , composite number , biodiversity , ecology , chemistry , computational chemistry , biology
This paper addresses multiscale stiffness homogenization methodology to extract macroscale elastic mechanical properties of four types of sustainable concretes from their nanoscale mechanical properties. Nine different sustainable concrete mixtures were studied. A model based on micromechanics was used to homogenize the elastic properties. The hardened cement pastes were homogenized by three analytical methods based on Self-Consistent and Mori-Tanaka schemes. The proposed multiscale method combines advanced experimental and analytical methods in a systematic way so that the inputs are nanoscale phases properties extracted from statistical nanoindentation technique and mechanical properties of mixture ingredient. Predicted elastic properties were consistent with traditional experimental results. Linking homogenized mechanical properties of sustainable concrete to volume proportions through an analytical approach provides a critical first step towards rational optimization of these materials

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