The project spanned several phases, each aimed at addressing the overarching goal of incorporating thermal effects into slope stability assessments under climate change scenarios. Initial efforts focused on developing a conceptual framework for the thermo-hydro-mechanical (THM) model, based on the current developments on non-isothermal constative models and numerical tools capable of coupled THM simulation. This was followed by the numerical implementation of the model, using Code_Bright finite element software for robust simulation capabilities.
Key activities included: Literature Review and Conceptual Modeling: Comprehensive analysis of current models and identification of gaps in addressing thermal impacts on slope stability.
Model Development and Calibration: Design and calibration of the THM model to accurately simulate thermal, hydraulic, and mechanical soil behaviors.
In the project, a advanced non-isothermal viscoplastic model was developed to simulate the behavior of clays under conditions of heating and residual stress. This model was effectively implemented into a finite element program for Thermo-Hydro-Mechanical (THM) analysis of porous media, confirming its accuracy through numerical simulations that replicated experimental outcomes. Innovative mathematical expressions were introduced for strength parameters and stiffness characteristics associated with the hyperbolic yield surface, enhancing the model's predictive power. Additionally, this model was integrated as a constitutive law in the computer code, Code_Bright, bolstering its application in complex geotechnical simulations.
Further advancements were made by developing constitutive model for argillaceous hard soils and weak rocks to include non-isothermal conditions, aimed at improving THM simulations. The proposed thermo-elastoplastic model accounts for the effects of temperature on yield and plastic potential functions and on elastic stiffness, which was validated against non-isothermal laboratory tests documented in the literature.
Parametric Analysis: Execution of extensive simulations to assess the impact of various climate scenarios on slope stability.
Overview of Results Exploitation and Dissemination: Knowledge Transfer: Insights from the project have been incorporated into the host institution's curriculum and ongoing research activities, enhancing the educational and practical training of students and professionals in geotechnical engineering.
Tool Development: The THM model has been integrated into a suite of tools offered to engineers and policymakers for improved landslide risk assessment and management.
Dissemination: Publications: Results have been published in high-impact peer-reviewed journals, ensuring wide dissemination within the academic and professional communities. Key publications include articles in 'Géotechnique' and Geomechanics for Energy and the Environment'.
Conferences and Workshops: Findings were presented at major international conferences, including the 10th European Conference on Numerical Methods in Geotechnical Engineering, London, UK, 84th EAGE Annual Conference & Exhibition, Vienna, Austria, 17th Plinius Conference on Mediterranean Risks, Roma, Italy, EGU General Assembly 2022, Vienna, Austria, 2nd International Conference on Energy Geotechnics, CA, USA.