Dynamic Mechanical Properties and Constitutive Model of Saturated Frozen Soil with Different Pore Ratios

ABSTRACT This study investigates the dynamic stability of frozen soil slopes subjected to strong disturbances such as blasting. Dynamic compression tests were conducted on saturated frozen clay specimens using a split Hopkinson pressure bar system. The effects of strain rate (100–700 s−1), temperature (−15°C, −23°C, and −30°C), and pore ratio (0.30, 0.24, and 0.18) on the mechanical behavior were systematically examined. The propagation of stress waves and the dynamic stress–strain responses were analyzed. Results show that as the strain rate increases, the arrival times of the incident, reflected, and transmitted wave peaks advance, and the time to reach peak energy, stress, and strain decreases. This trend is consistent across all tested temperatures and pore ratios. Both lower temperatures and higher pore ratios lead to increased specimen strength and a marked shortening of the plastic plateau stage in the stress–strain curves. Based on the experimental results and the effective stress principle for saturated soils, a damage-enhanced constitutive model was developed within the Zhu-Wang-Tang constitutive framework by incorporating a wave-impedance term. This term links microstructural changes (ice content and cementation) to macroscopic strength, effectively characterizing the coupled effects of strain rate, temperature, and pore ratio. The model predictions show good agreement with the experimental data, providing a theoretical basis for the dynamic analysis of frozen soil engineering.

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Publication Details

Journal
Journal of Testing and Evaluation
Published
2026-09-04
DOI
https://doi.org/10.1520/jte20260042
Primary Topic
Climate change and permafrost
Type
article
Field-Weighted Citation Impact
0.00

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article

Dynamic Mechanical Properties and Constitutive Model of Saturated Frozen Soil with Different Pore Ratios

Fuhan Yang, Xuefeng Zhang, Cheng Chen, Cheng Chen et al.
Journal of Testing and Evaluation
Climate change and permafrost
article

Dynamic Mechanical Properties and Constitutive Model of Saturated Frozen Soil with Different Pore Ratios

Fuhan Yang, Xuefeng Zhang, Cheng Chen, Cheng Chen, Quanming Li, Shizheng Fang, Yukai Wang
article en

Abstract

ABSTRACT This study investigates the dynamic stability of frozen soil slopes subjected to strong disturbances such as blasting. Dynamic compression tests were conducted on saturated frozen clay specimens using a split Hopkinson pressure bar system. The effects of strain rate (100–700 s−1), temperature (−15°C, −23°C, and −30°C), and pore ratio (0.30, 0.24, and 0.18) on the mechanical behavior were systematically examined. The propagation of stress waves and the dynamic stress–strain responses were analyzed. Results show that as the strain rate increases, the arrival times of the incident, reflected, and transmitted wave peaks advance, and the time to reach peak energy, stress, and strain decreases. This trend is consistent across all tested temperatures and pore ratios. Both lower temperatures and higher pore ratios lead to increased specimen strength and a marked shortening of the plastic plateau stage in the stress–strain curves. Based on the experimental results and the effective stress principle for saturated soils, a damage-enhanced constitutive model was developed within the Zhu-Wang-Tang constitutive framework by incorporating a wave-impedance term. This term links microstructural changes (ice content and cementation) to macroscopic strength, effectively characterizing the coupled effects of strain rate, temperature, and pore ratio. The model predictions show good agreement with the experimental data, providing a theoretical basis for the dynamic analysis of frozen soil engineering.

Journal of Testing and Evaluation
North China University of Technology (CN), Chinese Center For Disease Control and Prevention (CN), Jingdong (China) (CN), Kunming Metallurgical Research Institute (CN)
National Natural Science Foundation of China
Life in Land
Openalex Percentile: Top 14%
Climate change and permafrost
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