Macroscopic model with anisotropy based on micro-macro informations
Nishant Kumar, Stefan Luding, Vanessa Magnanimo

TL;DR
This paper develops a microstructure-informed macroscopic elastic model for granular materials, linking fabric anisotropy to elastic moduli and stress response through simulations and incremental constitutive equations.
Contribution
It introduces a novel constitutive model that relates microstructural fabric anisotropy to elastic response and predicts material behavior under cyclic shear.
Findings
Elastic moduli depend on fabric anisotropy and stress state.
A single anisotropy modulus couples volumetric and deviatoric responses.
Model accurately predicts cyclic shear behavior including strain reversal effects.
Abstract
Physical experiments can characterize the elastic response of granular materials in terms of macroscopic state-variables, namely volume (packing) fraction and stress, while the microstructure is not accessible and thus neglected. Here, by means of numerical simulations, we analyze dense, frictionless, granular assemblies with the final goal to relate the elastic moduli to the fabric state, i.e., to micro-structural averaged contact network features as contact number density and anisotropy. The particle samples are first isotropically compressed and later quasi-statically sheared under constant volume (undrained conditions). From various static, relaxed configurations at different shear strains, now infinitesimal strain steps are applied to "measure" the effective elastic response; we quantify the strain needed so that plasticity in the sample develops as soon as contact and structure…
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Taxonomy
TopicsGranular flow and fluidized beds · Landslides and related hazards · Geotechnical Engineering and Soil Mechanics
