Constitutive models for anisotropic clays incorporate a tensor-valued quantity named the ‘fabric tensor’ to describe the direction-dependent mechanical response of the material. Although the term ‘fabric’ reflects the directional properties at the microscale, this tensor is not actually measured or observed at the microscale but formulated as a mathematical entity and calibrated by best-fitting experimental observations at the macro-scale. 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. Owing 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 two-dimensional numerical framework and consisted of a set of virgin radial paths to generate different macroscopic anisotropic responses, quantified by way of 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 had been 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.
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6 May 2026
Research Article|
March 09 2026
Clay anisotropy: bridging the gap between micro and macro scales
Arianna Gea Pagano;
Arianna Gea Pagano
*James Watt School of Engineering,
University of Glasgow
, UK
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Fabio Rollo;
Fabio Rollo
†Department of Structural and Geotechnical Engineering,
Sapienza University of Rome
, Rome, Italy
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Vanessa Magnanimo;
Vanessa Magnanimo
‡Department of Civil Engineering and Management,
University of Twente
, Enschede, Netherlands
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Alessandro Tarantino;
Alessandro Tarantino
§Department of Civil and Environmental Engineering,
University of Strathclyde
, Glasgow, UK
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Angelo Amorosi
‖Department of Structural and Geotechnical Engineering,
Sapienza University of Rome
, Rome, Italy
Corresponding author Angelo Amorosi (angelo.amorosi@uniroma1.it)
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Corresponding author Angelo Amorosi (angelo.amorosi@uniroma1.it)
Publisher: Emerald Publishing
Received:
April 30 2025
Accepted:
December 04 2025
Online ISSN: 1751-7656
Print ISSN: 0016-8505
Funding
Funding Group:
- Funding Statement(s): Angelo Amorosi and Fabio Rollo acknowledge the financial support of the RETURN Extended Partnership and received funding from the European Union Next-GenerationEU (National Recovery and Resilience Plan – NRRP, Mission 4, Component 2, Investment 1.3 – D.D. 1243 2/8/2022, PE0000005). Angelo Amorosi also acknowledges the Project DAMAGE, Prin 2022 – CUP B53D23005430006 – Grant Assignment Decree No. 961 adopted on 30 June 2023 by the Italian Ministry of Ministry of University and Research (MUR).
© 2026 Emerald Publishing Limited
2026
Emerald Publishing Limited
Licensed re-use rights only
Geotechnique (2026) 76 (5): 690–707.
Article history
Received:
April 30 2025
Accepted:
December 04 2025
Citation
Pagano AG, Rollo F, Magnanimo V, Tarantino A, Amorosi A (2026), "Clay anisotropy: bridging the gap between micro and macro scales". Geotechnique, Vol. 76 No. 5 pp. 690–707, doi: https://doi.org/10.1680/jgeot.25.00450
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