TY - JOUR
T1 - Multi-field coupling behavior of frozen soil under impact loading based on phase-field model
AU - Zhang, Fulai
AU - Zhu, Zhiwu
AU - Zhang, Taiyu
AU - Ning, Jianguo
AU - Li, Tao
AU - Cheng, Zhengqiang
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/5/13
Y1 - 2025/5/13
N2 - The complex multiphase composition of frozen soil induces significant coupling interactions between the thermal, hydrological, mechanical, and damage fields during deformation, particularly under dynamic loading conditions. This study presents a hybrid decomposition phase-field model to investigate the multi-field coupling behavior and damage mechanisms of frozen soil. Unlike the spectral decomposition model, the proposed framework integrates isotropic degradation and the spectral decomposition methods, thereby enabling the simulation of damage evolution under compressive-dominated loading conditions. The model incorporates the viscous effects and strain rate sensitivity to accurately capture the dynamic response of frozen soil and establishes governing equations for coupled displacement, temperature, and fluid pressure fields. The applicability of the model was validated through confined compression experiments on frozen soil, demonstrating its capability to predict distinctive damage features, such as compaction bands oriented perpendicular to the loading direction, which represent the competitive interaction between the softening mechanism of pore collapse and the hardening mechanism of microstructural densification. This study provides significant advancements in the theoretical understanding and numerical simulation of the dynamic mechanical behavior of frozen soil.
AB - The complex multiphase composition of frozen soil induces significant coupling interactions between the thermal, hydrological, mechanical, and damage fields during deformation, particularly under dynamic loading conditions. This study presents a hybrid decomposition phase-field model to investigate the multi-field coupling behavior and damage mechanisms of frozen soil. Unlike the spectral decomposition model, the proposed framework integrates isotropic degradation and the spectral decomposition methods, thereby enabling the simulation of damage evolution under compressive-dominated loading conditions. The model incorporates the viscous effects and strain rate sensitivity to accurately capture the dynamic response of frozen soil and establishes governing equations for coupled displacement, temperature, and fluid pressure fields. The applicability of the model was validated through confined compression experiments on frozen soil, demonstrating its capability to predict distinctive damage features, such as compaction bands oriented perpendicular to the loading direction, which represent the competitive interaction between the softening mechanism of pore collapse and the hardening mechanism of microstructural densification. This study provides significant advancements in the theoretical understanding and numerical simulation of the dynamic mechanical behavior of frozen soil.
KW - Frozen soil
KW - Geomaterial
KW - Impact loading
KW - Multi-field coupling
KW - Phase-field model
UR - http://www.scopus.com/inward/record.url?scp=105000588892&partnerID=8YFLogxK
U2 - 10.1016/j.engfracmech.2025.111049
DO - 10.1016/j.engfracmech.2025.111049
M3 - Article
AN - SCOPUS:105000588892
SN - 0013-7944
VL - 320
JO - Engineering Fracture Mechanics
JF - Engineering Fracture Mechanics
M1 - 111049
ER -