Numerical estimation of transport properties of cementitious materials using 3D digital images

A multi-scale characterisation of the transport process within cementitious microstructure possesses a great challenge in terms of modelling and schematization. In this paper a numerical method is proposed to mitigate the resolution problems in numerical methods for calculating effective transport p...

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Main Authors: van Breugel K., Ukrainczyk N., Koenders E.A.B.
Format: Article
Language:English
Published: EDP Sciences 2013-07-01
Series:EPJ Web of Conferences
Online Access:http://dx.doi.org/10.1051/epjconf/20135601007
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spelling doaj-8673c5699a674a1b912941a53b8d81672021-08-02T09:15:01ZengEDP SciencesEPJ Web of Conferences2100-014X2013-07-01560100710.1051/epjconf/20135601007Numerical estimation of transport properties of cementitious materials using 3D digital imagesvan Breugel K.Ukrainczyk N.Koenders E.A.B.A multi-scale characterisation of the transport process within cementitious microstructure possesses a great challenge in terms of modelling and schematization. In this paper a numerical method is proposed to mitigate the resolution problems in numerical methods for calculating effective transport properties of porous materials using 3D digital images. The method up-scales sub-voxel information from the fractional occupancy level of the interface voxels, i.e. voxels containing phaseboundary, to increase the accuracy of the pore schematization and hence the accuracy of the numerical transport calculation as well. The numerical identification of the subvoxels that is associated with their level of occupancy by each phase is obtained by increasing the pre-processing resolution. The proposed method is presented and employed for hydrated cement paste microstructures obtained from Hymostruc, a numerical model for cement hydration and microstructure simulation. The new method significantly reduces computational efforts, is relatively easy to implement, and improves the accuracy of the estimation of the effective transport property. http://dx.doi.org/10.1051/epjconf/20135601007
collection DOAJ
language English
format Article
sources DOAJ
author van Breugel K.
Ukrainczyk N.
Koenders E.A.B.
spellingShingle van Breugel K.
Ukrainczyk N.
Koenders E.A.B.
Numerical estimation of transport properties of cementitious materials using 3D digital images
EPJ Web of Conferences
author_facet van Breugel K.
Ukrainczyk N.
Koenders E.A.B.
author_sort van Breugel K.
title Numerical estimation of transport properties of cementitious materials using 3D digital images
title_short Numerical estimation of transport properties of cementitious materials using 3D digital images
title_full Numerical estimation of transport properties of cementitious materials using 3D digital images
title_fullStr Numerical estimation of transport properties of cementitious materials using 3D digital images
title_full_unstemmed Numerical estimation of transport properties of cementitious materials using 3D digital images
title_sort numerical estimation of transport properties of cementitious materials using 3d digital images
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2013-07-01
description A multi-scale characterisation of the transport process within cementitious microstructure possesses a great challenge in terms of modelling and schematization. In this paper a numerical method is proposed to mitigate the resolution problems in numerical methods for calculating effective transport properties of porous materials using 3D digital images. The method up-scales sub-voxel information from the fractional occupancy level of the interface voxels, i.e. voxels containing phaseboundary, to increase the accuracy of the pore schematization and hence the accuracy of the numerical transport calculation as well. The numerical identification of the subvoxels that is associated with their level of occupancy by each phase is obtained by increasing the pre-processing resolution. The proposed method is presented and employed for hydrated cement paste microstructures obtained from Hymostruc, a numerical model for cement hydration and microstructure simulation. The new method significantly reduces computational efforts, is relatively easy to implement, and improves the accuracy of the estimation of the effective transport property.
url http://dx.doi.org/10.1051/epjconf/20135601007
work_keys_str_mv AT vanbreugelk numericalestimationoftransportpropertiesofcementitiousmaterialsusing3ddigitalimages
AT ukrainczykn numericalestimationoftransportpropertiesofcementitiousmaterialsusing3ddigitalimages
AT koenderseab numericalestimationoftransportpropertiesofcementitiousmaterialsusing3ddigitalimages
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