a School of Aerospace Engineering and Applied Mechanics, Tongji University, Shanghai, 200092, China
b Department of Civil and Environmental Engineering, Universitat Politecnica de Catalunya (UPC), Barcelona, 08034, Spain
c DMT GmbH & Co. KG., Essen, 45307, Germany
d GeoRessources Laboratory, National School of Geology (ENSG), University of Lorraine, Vandoeuvre-les-Nancy, 54500, France
2025, 17(4): 1941-1960. doi:10.1016/j.jrmge.2024.03.037
Received: 2024-01-13 / Revised: 2024-03-17 / Accepted: 2024-03-31 / Available online: 2024-07-26
2025, 17(4): 1941-1960.
doi:10.1016/j.jrmge.2024.03.037
Received: 2024-01-13
Revised: 2024-03-17
Accepted: 2024-03-31
Available online: 2024-07-26
This study presents a fully coupled thermo-hydro-mechanical (THM) constitutive model for clay rocks. The model is formulated within the elastic-viscoplasticity framework, which considers nonlinearity and softening after peak strength, anisotropy of stiffness and strength, as well as permeability variation due to damage. In addition, the mechanical properties are coupled with thermal phenomena and accumulated plastic strains. The adopted nonlocal and viscoplastic approaches enhance numerical efficiency and provide the possibility to simulate localization phenomena. The model is validated against experimental data from laboratory tests conducted on Callovo-Oxfordian (COx) claystone samples that are initially unsaturated and under suction. The tests include a thermal phase where the COx specimens are subjected to different temperature increases. A good agreement with experimental data is obtained. In addition, parametric analyses are carried out to investigate the influence of the hydraulic boundary conditions (B.C.) and post-failure behavior models on the THM behavior evolution. It is shown that different drainage conditions affect the thermally induced pore pressures that, in turn, influence the onset of softening. The constitutive model presented constitutes a promising approach for simulating the most important features of the THM behavior of clay rocks. It is a tool with a high potential for application to several relevant case studies, such as thermal fracturing analysis of nuclear waste disposal systems.
Keywords: Hard soil, Soft rocks, Unsaturated/saturated conditions, THM coupling processes, Thermal pressurization, Constitutive model
Fei Song
Dr. Fei Song received his PhD at Universitat Politècnica de Catalunya (UPC), Spain in 2021 and then took the position of PostDoc researcher at the same university with Prof. Antonio Gens (FREng, Laureate Engineer) from 2021 to 2023. He joined Tongji University in 2023 as a full researcher. He is a Shanghai high-level youth talent program awardee (2022), Shanghai Sailing Program awardee (2024), UPC's special doctoral awardee (2023), an external referee of the committee for Technical Sciences of the Czech Science Foundation (2023), the member of the Early Career Editorial Board of Deep Underground Science and Engineering (2024–2025), and the member of Journal of China Three Gorges University (Natural Sciences) (2024–2026). His research interests cover finite element analyses of multi-physics coupling problems, numerical and theoretical solutions of tunnelling problems, thermo-hydro-mechanical analyses of nuclear waste disposals, etc.