A state-dependent multilaminate constitutive model for anisotropic sands

Author:

Bayraktaroglu Hilmi1ORCID,Hicks Michael A.1ORCID,Korff Mandy1ORCID,Galavi Vahid2ORCID

Affiliation:

1. Section of Geo-Engineering, Faculty of Civil Engineering and Geosciences, Delft University of Technology, Delft, the Netherlands.

2. DIANA FEA BV, Delft, the Netherlands; formerly Deltares, Department of Geo-Engineering, Delft, the Netherlands.

Abstract

Experimental studies show that initial fabric and its evolution under different stress paths greatly influences soil behaviour. Even though different sample preparation methods create different inherent anisotropies and cause different material responses, the same initial fabric structure under different stress paths also results in different material behaviours. In this paper, a simple state-dependent, bounding surface-based elastoplastic constitutive model, which can simulate the anisotropic nature of sands including the effect of principal stress rotation, is described. The model is developed based on a semi-micromechanical concept within the multilaminate framework and, to include the inherent anisotropy of sand, a deviatoric fabric tensor describing the initial microstructure is introduced. In addition, a fabric evolution rule compatible with anisotropic critical state theory is employed to describe the evolving fabric structure and induced anisotropy towards the critical state. In contrast to the classical strain-driven formulation for fabric evolution, a micro-level evolution rule is proposed. This paper presents concise theoretical aspects of the multilaminate framework and the anisotropic elastoplastic constitutive formulation. The model's capability under drained and undrained monotonic loading conditions at different stress states, relative densities and principal stress orientations is demonstrated by simulating experimental data for Toyoura sand.

Publisher

Thomas Telford Ltd.

Subject

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

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