The elastic properties and tensile strength of cement paste were investigated from a theoretical viewpoint. By means of molecular dynamics (MD) simulations, the Mori–Tanaka homogenisation method and Griffith fracture theory, a comprehensive methodology was developed to explore the mechanical properties of cement paste from nanoscale to microscale. A series of nanostructures representing the main constituents of cement paste was constructed and analysed in the light of MD simulations, in which microporomechanics analysis was conducted to consider the influence of gel porosity. The outcomes were then upscaled for the elastic constants of cement paste using the Mori–Tanaka homogenisation method. Finally, the tensile strength of cement paste was obtained according to Griffith fracture theory. The calculation results were in good agreement with the experimental data, which shows that the multiscale coupling method based on MD is capable of capturing the mechanical properties of cement paste from the atomic scale, thus providing a new perspective on the multiscale study of cement-based materials.
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February 2016
Research Article|
August 08 2015
Nano–micro modelling of mechanical properties of cement paste based on molecular dynamics Available to Purchase
Jikai Zhou;
Jikai Zhou
College of Civil and Transportation Engineering, Hohai University, Nanjing, China
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Junkai Huang;
Junkai Huang
College of Civil and Transportation Engineering, Hohai University, Nanjing, China
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Long Jin
Long Jin
College of Civil and Transportation Engineering, Hohai University, Nanjing, China
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Publisher: Emerald Publishing
Received:
April 23 2015
Revision Received:
June 26 2015
Accepted:
July 09 2015
Online ISSN: 1751-7605
Print ISSN: 0951-7197
ICE Publishing: All rights reserved
2015
Advances in Cement Research (2016) 28 (2): 73–83.
Article history
Received:
April 23 2015
Revision Received:
June 26 2015
Accepted:
July 09 2015
Citation
Zhou J, Huang J, Jin L (2016), "Nano–micro modelling of mechanical properties of cement paste based on molecular dynamics". Advances in Cement Research, Vol. 28 No. 2 pp. 73–83, doi: https://doi.org/10.1680/adcr.15.00048
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