This study presents a series of discrete element method (DEM) simulations consisting of mixtures of stiff (sand) and soft (rubber) particles, subjected to monotonic triaxial shearing under constant volume at very small strains where pure elasticity governs the behaviour of the samples. The elastic shear moduli of the simulated pure sand and pure rubber samples were first calibrated to values reported in previous experimental works. Sand–rubber mixtures were then simulated with a focus on small-strain stiffness to examine the role of rubber content on the prevailed micro-mechanisms of the samples. The macro-mechanical response of the numerical mixtures showed a decrease in the elastic shear modulus and the deviatoric stress as the soft particle content increased, in line with observations from laboratory tests. Micro-scale information including coordination number, fabric tensor and normal contact force anisotropy was obtained for all tests and the contribution of each type of contact, i.e. sand–sand, rubber–sand or rubber–rubber, in the overall response of the samples, was analysed. The contact force network in the mixtures changed from being sand-dominated to rubber-dominated, with the presence of an intermediate zone in between rubber and sand particles forming a stable contact force network mainly by sand–rubber contacts. Each type of contact was seen to contribute differently to the deviatoric stress in the system as the rubber content increased.
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February 2017
Research Article|
August 01 2016
Investigation of the micro-mechanics of sand–rubber mixtures at very small strains Available to Purchase
J. C. Lopera Perez;
J. C. Lopera Perez
Student
1Department of Civil Engineering, The University of Hong Kong, Haking Wong Building, Pokfulam Road, Hong Kong, E-mail: u3002002@hku.hk
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C. Y. Kwok;
C. Y. Kwok
Assistant Professor
2Department of Civil Engineering, The University of Hong Kong, Haking Wong Building, Pokfulam Road, Hong Kong, E-mail: fiona.kwok@hku.hk (corresponding author)
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K. Senetakis
K. Senetakis
Assistant Professor
3School of Civil and Environmental Engineering, University of New South Wales, Sydney, NSW2052, Australia, E-mail: k.senetakis@unsw.edu.au
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Publisher: Emerald Publishing
Received:
August 26 2015
Revision Received:
January 30 2016
Accepted:
June 16 2016
Online ISSN: 1751-7613
Print ISSN: 1072-6349
© 2016 Thomas Telford Ltd
2016
Geosynthetics International (2017) 24 (1): 30–44.
Article history
Received:
August 26 2015
Revision Received:
January 30 2016
Accepted:
June 16 2016
Citation
Lopera Perez JC, Kwok CY, Senetakis K (2017), "Investigation of the micro-mechanics of sand–rubber mixtures at very small strains". Geosynthetics International, Vol. 24 No. 1 pp. 30–44, doi: https://doi.org/10.1680/jgein.16.00013
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