Abstract

Many advanced constitutive models which can capture the strain-softening and state-dependent dilatancy response of sand have been developed. These models can give good prediction of the single soil element behaviour under various loading conditions. But the solution will be highly mesh-dependent when they are used in real boundary value problems due to the strain-softening. They can give mesh-dependent strain localization pattern and bearing capacity of foundations on sand. Nonlocal regularization of an anisotropic critical state sand model is presented. The evolution of void ratio which has a significant influence on strain-softening is assumed to depend on the volumetric strain increment of both the local and neighbouring integration points. The regularization method has been implemented using the explicit stress integration method. The nonlocal model has been used in simulating both drained plane strain compression and the response of a strip footing on dry sand. In plane strain compression, mesh-independent results for the force–displacement relationship and shear band thickness can be obtained when the mesh size is smaller than the internal length. The force–displacement relationship of strip footings predicted by the nonlocal model is much less mesh-sensitive than the local model prediction. The strain localization under the strip footing predicted by the nonlocal model is mesh independent. The regularization method is thus proper for application in practical geotechnical engineering problems.

Highlights

  • Many advanced constitutive models for sand have been proposed (e.g. [12, 14, 16, 18, 30, 31, 33–35])

  • The force–displacement relationship of strip footings predicted by the nonlocal model is much less mesh-sensitive than the local model prediction

  • The strain localization under the strip footing predicted by the nonlocal model is mesh independent

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Summary

Introduction

Many advanced constitutive models for sand have been proposed (e.g. [12, 14, 16, 18, 30, 31, 33–35]). The model can be regularized by assuming that strain-softening variable is dependent on the nonlocal plastic shear strain. Mallikarachchi and Soga [21] are among the first to propose a nonlocal regularization method for an advanced sand model considering the effect of void ratio and mean effective stress on the soil behaviour. It is found that this method can effectively reduce the mesh-dependency of the model prediction for drained and undrained plane strain compression tests This method has not be used in a practical geotechnical problem. The nonlocal model is used to simulate strain localization in plan strain compression and the response of a strip footing on dry sand The practicality of this regularization method in real geotechnical engineering problems is discussed

The original constitutive model
Nonlocal formulation of the constitutive model
Strain localization under plane strain compression
The effect of internal length
Simulation of the strain localization
Simulation of the response of a strip footing on sand
Conclusion
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