Effect of Freeze–Thaw Cycles on the Shear Strength of Root-Soil Composite
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Site
2.2. Experimental Materials
2.2.1. Material Parameters
2.2.2. Specimen Preparation Method
2.3. The Direct Shear Test Method under Freeze–Thaw Cycles
2.4. The Numerical Simulation Method
2.4.1. Bare Soil Modeling and Boundary Conditions
2.4.2. Root-Soil Composite Modeling and Boundary Conditions
2.4.3. Parameter and Mesh of Simulation Models
3. Results
3.1. Effect of Initial Moisture Content on the Shear Strength of Specimens under Freezing and Thawing
3.1.1. Bare Soil Case
3.1.2. Root-Soil Composite Case
3.2. Effect of the Number of Freeze–Thaw Cycles on the Shear Strength of Specimens
3.2.1. Bare Soil Case
3.2.2. Root-Soil Composite Case
3.3. Influence of Root Content on the Shear Strength of Root-Soil Composite during Freeze–Thaw Cycle
3.4. Theoretical Results of the Shear Strength of Samples under Freeze–Thaw Action
3.5. Simulation Calculation Results
3.5.1. Stress Distribution Results
3.5.2. Comparison of Shear Stress–Displacement Curves
4. Discussion
4.1. Effect of Initial Moisture Content on the Shear Strength of Specimens under Freezing and Thawing
4.2. Effect of the Number of Freeze–Thaw Cycles on the Shear Strength of Specimens
4.3. Influence of Root Content on the Shear Strength of Root-Soil Composite during the Freeze–Thaw Cycle
4.4. Numerical Simulation Discussion and Mechanism Analysis
5. Conclusions
- (1)
- The first freeze–thaw cycle caused the largest impact on the shear strength of the bare soil. After 3–5 freeze–thaw cycles, soil shear strength stabilized. The weakening effect on the root-soil composite is mitigated during the two early freeze–thaw cycles. Roots play an inhibitory role in the increase in soil porosity during freeze–thaw cycles.
- (2)
- The percentage decrease in cohesion for both bare soil and root-soil composite gradually becomes more pronounced as the moisture content increases. The increasing root content can nonlinearly inhibit the decrease in the cohesion and shear strength. The freeze–thaw cycle mainly affects the change in the cohesion of bare soil and root-soil composite rather than the change in φ and then affects their shear strength.
- (3)
- The fitting formulas applied to the numerical simulation of the direct shear test under freezing and thawing of the soil were feasible and accurate. For bare soil, the differences in cohesion and internal friction angle between the numerical simulation and the direct shear test are 8.2% and 23.4%, respectively. For root-soil composite, those differences are 17.2% and 15.7%, respectively.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Geotechnical Types | Density/ (g·cm−3) | The Natural Moisture Content/% | Particle Composition/% | ||
---|---|---|---|---|---|
>10 mm | 1~10 mm | <1 mm | |||
Root-soil composite | 1.018 | 32 | / | / | / |
Bare soil | 1.249 | 40 | 20 | 50 | 30 |
Experimental Soil | Initial Moisture Content/% | Freezing Temperature/°C | Melting Temperature/°C | Number of Freeze–Thaw Cycles |
---|---|---|---|---|
Root-soil composite | 26 | −10 | 20 | 0, 1, 3, 5 |
30 | −10 | 20 | 0, 1, 3, 5 | |
34 | −10 | 20 | 0, 1, 3, 5 | |
Bare soil | 32 | −10 | 20 | 0, 1, 3, 5 |
36 | −10 | 20 | 0, 1, 3, 5 | |
40 | −10 | 20 | 0, 1, 3, 5 |
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Liu, Q.; Huang, J.; Zhang, Z.; Liu, G.; Jiang, Q.; Liu, L.; Khan, I. Effect of Freeze–Thaw Cycles on the Shear Strength of Root-Soil Composite. Materials 2024, 17, 285. https://doi.org/10.3390/ma17020285
Liu Q, Huang J, Zhang Z, Liu G, Jiang Q, Liu L, Khan I. Effect of Freeze–Thaw Cycles on the Shear Strength of Root-Soil Composite. Materials. 2024; 17(2):285. https://doi.org/10.3390/ma17020285
Chicago/Turabian StyleLiu, Qi, Jiankun Huang, Zhiwei Zhang, Gongming Liu, Qunou Jiang, Lanhua Liu, and Inam Khan. 2024. "Effect of Freeze–Thaw Cycles on the Shear Strength of Root-Soil Composite" Materials 17, no. 2: 285. https://doi.org/10.3390/ma17020285
APA StyleLiu, Q., Huang, J., Zhang, Z., Liu, G., Jiang, Q., Liu, L., & Khan, I. (2024). Effect of Freeze–Thaw Cycles on the Shear Strength of Root-Soil Composite. Materials, 17(2), 285. https://doi.org/10.3390/ma17020285