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Multi-scale insights into gas transport in granular bentonite at partially saturated states

Hao Zeng, Laura Gonzalez‐Blanco, Enrique Romero

Géotechnique | Jul 16, 2026

Abstract

Abstract

Knowledge gaps in gas transport through partially saturated granular bentonite (GB), characterised by an extended particle size distribution up to several millimetres, limit the long-term safety assessment of engineered barriers. Thus, gas transport in GB samples, starting from as-compacted states and including subsequent loading, progressive saturation and their combination, was investigated through variations in the effective gas permeability (Kg · eff). The microstructure of the samples was characterised using combined mercury intrusion porosimetry and X-ray micro-computed tomography, providing multi-scale insights into Kg · eff in relation to pore size distribution, effective connectivity, density heterogeneity and gas pathway development. A higher as-compacted degree of saturation, mechanical loading and progressive saturation each reduced Kg · eff by promoting the reduction, isolation and closure of inter-granular pores. Gas pressurisation also induced enlargement and reconnection of inter-granular pores in as-compacted states and, after progressive saturation, the formation of highly connected fissure-like features that enhanced gas flow, whereas prior loading constrained these responses. A gas permeability model incorporating granular-type microstructural evolution was developed to capture the main experimental trends. Overall, compared with powdered bentonite, the granular-type microstructure of GB facilitates controlled gas release, supporting its suitability for engineered barrier applications.

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Authors

Researchers on this paper

Hao Zeng

first | International Center for Numerical Methods in Engineering | ORCID 0000-0002-5101-3982

Laura Gonzalez‐Blanco

middle | International Center for Numerical Methods in Engineering | ORCID 0000-0003-3800-3007

Enrique Romero

last | International Center for Numerical Methods in Engineering | ORCID 0000-0002-4105-8941

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Citation

BibTeX

@article{Zeng2026Multi,
  title = {Multi-scale insights into gas transport in granular bentonite at partially saturated states},
  author = {Hao Zeng and Laura Gonzalez‐Blanco and Enrique Romero},
  journal = {Géotechnique},
  year = {2026},
  doi = {10.1680/jgeot.25.00563},
  url = {https://doi.org/10.1680/jgeot.25.00563}
}

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