A modified coherent potential approximation: Grain-contact moduli and coordination-number effect

We modified the self-consistent coherent potential approximation (CPA) for modeling properties of granular composite materials so that it takes into consideration the grain coordination number and distinctive elastic moduli for grain-contact zones. The original CPA was reasonably accurate for low-po...

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Main Authors: Madadi, Mahyar, Christy, A.
Format: Journal Article
Published: Society of Exploration Geophysics 2012
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/31662
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author Madadi, Mahyar
Christy, A.
author_facet Madadi, Mahyar
Christy, A.
author_sort Madadi, Mahyar
building Curtin Institutional Repository
collection Online Access
description We modified the self-consistent coherent potential approximation (CPA) for modeling properties of granular composite materials so that it takes into consideration the grain coordination number and distinctive elastic moduli for grain-contact zones. The original CPA was reasonably accurate for low-porosity consolidated sandstones but used only inclusion (pore or grain) shape and did not take into account morphological parameters such as coordination number and contact area or contact moduli. In our modified model, the grain inclusion was represented as a “grain with contact area”; therefore, scattering of elastic waves by contacts was incorporated. The modified CPA has been used to calculate data for 3D digital models of sintered quartz bead samples and Fontainebleau sandstones. Reduction of local elastic moduli for contact zones of specified area and thickness reduced effective overall moduli of the bulk sample. The modified theory predicted this weakening accurately, as compared to finite-element simulations.
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institution Curtin University Malaysia
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publishDate 2012
publisher Society of Exploration Geophysics
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spelling curtin-20.500.11937-316622018-03-29T09:09:14Z A modified coherent potential approximation: Grain-contact moduli and coordination-number effect Madadi, Mahyar Christy, A. alorithm acoustic 3D rock physics We modified the self-consistent coherent potential approximation (CPA) for modeling properties of granular composite materials so that it takes into consideration the grain coordination number and distinctive elastic moduli for grain-contact zones. The original CPA was reasonably accurate for low-porosity consolidated sandstones but used only inclusion (pore or grain) shape and did not take into account morphological parameters such as coordination number and contact area or contact moduli. In our modified model, the grain inclusion was represented as a “grain with contact area”; therefore, scattering of elastic waves by contacts was incorporated. The modified CPA has been used to calculate data for 3D digital models of sintered quartz bead samples and Fontainebleau sandstones. Reduction of local elastic moduli for contact zones of specified area and thickness reduced effective overall moduli of the bulk sample. The modified theory predicted this weakening accurately, as compared to finite-element simulations. 2012 Journal Article http://hdl.handle.net/20.500.11937/31662 10.1190/GEO2011-0292.1 Society of Exploration Geophysics restricted
spellingShingle alorithm
acoustic
3D
rock physics
Madadi, Mahyar
Christy, A.
A modified coherent potential approximation: Grain-contact moduli and coordination-number effect
title A modified coherent potential approximation: Grain-contact moduli and coordination-number effect
title_full A modified coherent potential approximation: Grain-contact moduli and coordination-number effect
title_fullStr A modified coherent potential approximation: Grain-contact moduli and coordination-number effect
title_full_unstemmed A modified coherent potential approximation: Grain-contact moduli and coordination-number effect
title_short A modified coherent potential approximation: Grain-contact moduli and coordination-number effect
title_sort modified coherent potential approximation: grain-contact moduli and coordination-number effect
topic alorithm
acoustic
3D
rock physics
url http://hdl.handle.net/20.500.11937/31662