The response of clay to mechanical compression is highly dependent on its stress history. Generally, normally consolidated clays exhibit a relatively soft response, while overconsolidated clays exhibit a much stiffer response upon reloading. In the literature this difference has been qualitatively attributed to differences in clay microstructure. In this paper, coarse-grained molecular dynamics simulations are used to propose that an additional contribution comes from the non-linear, non-monotonic relationship between the inter-particle forces and the separation distances. At large separation distances, clay particles interact by way of repulsive non-contact forces when the particles initially become close enough to interact. The strength of the mutual repulsion increases with decreasing separation until a maximum repulsive interaction energy, termed an energy barrier, is reached. Once this energy barrier is overcome, the particle interactions become attractive so that the particles effectively become bonded to each other. A new approach to interaction models for particle-scale simulation is used in this paper to show that the compressive forces experienced by particles under engineering stress levels are sufficient to push particle pairs into this attractive force regime; and that, upon subsequent unloading, these particles remain bonded to each other. The difference in macro-scale compressibility between normally consolidated and overconsolidated clays can be explained, at least in part, by this attraction and by particles irreversibly bonding together.
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24 February 2026
Research Article|
December 17 2025
Exploring the linkage between mechanical behaviour and particle-scale interaction of kaolinite
Yohei Nakamichi
;
*Department of Civil and Environmental Engineering,
Imperial College London
, London, UK
Corresponding author Yohei Nakamichi (yohei.nakamichi21@imperial.ac.uk)
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Catherine O’Sullivan
;
Catherine O’Sullivan
†Department of Civil and Environmental Engineering,
Imperial College London
, London, UK
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Paul Tangney
;
Paul Tangney
‡Department of Physics and Department of Materials,
Imperial College London
, London, UK
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Stefano Angioletti-Uberti
;
Stefano Angioletti-Uberti
§Department of Materials,
Imperial College London
, London, UK
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Sara Bandera
Sara Bandera
‖Department of Civil Engineering and Architecture (DICAr),
University of Pavia
, Pavia, Italy
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Corresponding author Yohei Nakamichi (yohei.nakamichi21@imperial.ac.uk)
Publisher: Emerald Publishing
Received:
June 20 2023
Accepted:
August 26 2025
Online ISSN: 1751-7656
Print ISSN: 0016-8505
Funding
Funding Group:
- Award Group:
- Funder(s): Leverhulme Trust
- Award Id(s): RPG-2017-055
- Funder(s):
- Award Group:
- Funder(s): EPSRC
- Award Id(s): EP/T022213/1,EP/W032260/1,EP/P020194/1
- Funder(s):
- Funding Statement(s): The first author was supported by Obayashi Corporation and Imperial College Dixon Scholarship. Sara Bandera’s doctoral research was funded by the Leverhulme Trust (project no. RPG-2017-055). Simulations were carried out using the high-performance computer (HPC) facilities at Imperial College London and University College London. The authors are grateful to the UK Materials and Molecular Modelling Hub for computational resources, which is partially funded by EPSRC (EP/T022213/1, EP/W032260/1 and EP/P020194/1).
© 2025 Emerald Publishing Limited
2025
Emerald Publishing Limited
Licensed re-use rights only
Geotechnique (2026) 76 (2): 302–319.
Article history
Received:
June 20 2023
Accepted:
August 26 2025
Citation
Nakamichi Y, O’Sullivan C, Tangney P, Angioletti-Uberti S, Bandera S (2026), "Exploring the linkage between mechanical behaviour and particle-scale interaction of kaolinite". Geotechnique, Vol. 76 No. 2 pp. 302–319, doi: https://doi.org/10.1680/jgeot.23.00193
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