A micro finite-element model for soil behaviour: numerical validation

Author:

Nadimi S.1ORCID,Fonseca J.1ORCID

Affiliation:

1. Department of Civil Engineering, City, University of London, London, UK.

Abstract

A micro finite-element (μFE) model capable of handling arbitrary shapes and deformable grains has been developed by the authors. The basis of this μFE model is to use a virtualised soil fabric obtained from micro computed tomography (μCT) of real sand to simulate grain-to-grain interaction in a framework of combined discrete–finite-element method. By incorporating grain deformation into the model, the contact response emerges from the interaction of contacting bodies and each irregular contact area will produce a unique response. A detailed numerical description of grain morphology and contact topology of a natural sand and the subsequent simulation are presented in the original paper. The present study focuses on the numerical validation of the constitutive contact behaviour against existent theories, for a single sphere and an assembly of spheres. The ability of the model to simulate elastic–plastic behaviour making use of the deformability of the grains is demonstrated. The unloading–reloading behaviour associated with the geometrical arrangement of the grains for a granular assembly under triaxial compression is examined in terms of energy dissipation quantities.

Publisher

Thomas Telford Ltd.

Subject

Earth and Planetary Sciences (miscellaneous),Geotechnical Engineering and Engineering Geology

Reference24 articles.

1. The role of quasi-plasticity in the extreme contact damage tolerance of the stomatopod dactyl club

2. Barreto, D. (2010). Numerical and experimental investigation into the behaviour of granular materials under generalised stress states. PhD thesis, Imperial College London, London, UK

3. Cavarretta, I. (2009). The influence of particle characteristics on the engineering behaviour of granular materials. PhD thesis, Imperial College London, London, UK.

4. The influence of particle characteristics on the behaviour of coarse grained soils

5. Normal and sliding contact experiments on gneiss

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