A hybrid peridynamics-finite element method for thermo-hydro-mechanical modeling of frost cracking in frozen soils

The simulation of frost cracking in cold-region soils involves the coupling of multiple physical processes, including heat transfer, water migration, phase change, and mechanical deformation, which presents significant challenges for traditional numerical methods. In this study, a thermo-hydro-mechanical (THM) coupled model based on classical frozen soil theory is combined with a hybrid peridynamics-finite element method (PD–FEM) to develop a numerical framework for simulating the damage and cracking behavior of soils during freezing. The PD method is used to describe the crack evolution process without requiring predefined crack paths, while the FEM is employed to solve the coupled temperature and water migration equations. The freeze-induced cracking process of a soil column under unidirectional freezing conditions was simulated. The simulation results agree well with experimental data, indicating that the proposed model can effectively capture damage, crack initiation, and propagation in soil during freezing while efficiently coupling multiple physical processes. Furthermore, this study explores the influence of crack propagation and the infilling material within the cracks on the freezing process.

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Publication Details

Journal
Computers and Geotechnics
Published
2026-09-12
DOI
https://doi.org/10.1016/j.compgeo.2026.108626
Primary Topic
Climate change and permafrost
Type
article
Field-Weighted Citation Impact
0.00

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article

A hybrid peridynamics-finite element method for thermo-hydro-mechanical modeling of frost cracking in frozen soils

Xiaoli Wei, Xin Gu, Qing Zhang, Zhiwei Zhou et al.
Computers and Geotechnics
Climate change and permafrost
article

A hybrid peridynamics-finite element method for thermo-hydro-mechanical modeling of frost cracking in frozen soils

Xiaoli Wei, Xin Gu, Qing Zhang, Zhiwei Zhou, Xing Li
article en

Abstract

The simulation of frost cracking in cold-region soils involves the coupling of multiple physical processes, including heat transfer, water migration, phase change, and mechanical deformation, which presents significant challenges for traditional numerical methods. In this study, a thermo-hydro-mechanical (THM) coupled model based on classical frozen soil theory is combined with a hybrid peridynamics-finite element method (PD–FEM) to develop a numerical framework for simulating the damage and cracking behavior of soils during freezing. The PD method is used to describe the crack evolution process without requiring predefined crack paths, while the FEM is employed to solve the coupled temperature and water migration equations. The freeze-induced cracking process of a soil column under unidirectional freezing conditions was simulated. The simulation results agree well with experimental data, indicating that the proposed model can effectively capture damage, crack initiation, and propagation in soil during freezing while efficiently coupling multiple physical processes. Furthermore, this study explores the influence of crack propagation and the infilling material within the cracks on the freezing process.

Computers and GeotechnicsVol. 202
Hohai University (CN), Northwest Institute of Eco-Environment and Resources (CN), Hexi University (CN)
National Natural Science Foundation of China
Clean water and sanitation
Openalex Percentile: Top 15%
Climate change and permafrost
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