Clay anisotropy : bridging the gap between micro and macro scales
Pagano, Arianna Gea and Rollo, Fabio and Magnanimo, Vanessa and Tarantino, Alessandro and Amorosi, Angelo (2025) Clay anisotropy : bridging the gap between micro and macro scales. Géotechnique. ISSN 0016-8505 (In Press)
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Abstract
Constitutive models for anisotropic clays incorporate a tensor-valued quantity to describe the direction-dependent reflects the directional properties at the microscale, this tensor is not actually measured nor observed at the microscale but formulated as a mathematical entity and calibrated by best-fitting experimental observations at the macroscale. This paper presents a first attempt to bridge the gap between micro and macro scales by using direct measurements of the fabric tensor at the microscale to inform a continuum-based constitutive model. Due to the scarcity of experimental measurements of the fabric in clayey geomaterials, this paper turns to virtual experiments using the Discrete Element Method (DEM) to quantify the microstructural arrangement and its evolution in response to imposed stress or strain history. The virtual experimental programme was performed in a simplified 2D numerical framework and consisted of a set of virgin radial paths to generate different macroscopic anisotropic responses, quantified via the elastic stiffness in the horizontal and vertical direction. An existing constitutive model developed within the framework of Thermodynamics with Internal Variables (TIV) was then used to describe the macroscopic behaviour of the DEM specimens, once the fabric-related parameters were inferred from particle orientations. The DEM-based TIV model was proven to simulate satisfactorily the numerical compressibility curves for radial compression paths at different stress ratios and, most importantly, to reproduce well the macroscopic anisotropic elastic stiffness and its evolution.
ORCID iDs
Pagano, Arianna Gea, Rollo, Fabio, Magnanimo, Vanessa, Tarantino, Alessandro
ORCID: https://orcid.org/0000-0001-6690-748X and Amorosi, Angelo;
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Item type: Article ID code: 94893 Dates: DateEvent4 December 2025Published4 December 2025AcceptedSubjects: Science > Geology Department: Faculty of Engineering > Civil and Environmental Engineering Depositing user: Pure Administrator Date deposited: 05 Dec 2025 10:24 Last modified: 18 Dec 2025 13:06 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/94893
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