Study on the Mechanical Criterion of Ice Lens Formation Based on Pore Size Distribution
Abstract
:1. Introduction
2. Theoretical Model
2.1. Hypotheses
- (1)
- The pores in soil were simplified as spheres with different radii and connected by cylindrical channels with different radii. Moreover, the cylindrical tubes are fully saturated.
- (2)
- Pores are uniformly distributed in the saturated soil (Figure 2a,b)
- (3)
- The freezing process started from the pores with larger radius (Figure 2c,d).
- (4)
- Spherical crystals with different radii are distributed evenly in the pores.
2.2. Equilibrium of a Single Crystal in a Pore
2.2.1. Chemical Equilibrium
2.2.2. Growth of the Crystal in the Pore
2.2.3. The Crystallization Stress of an Ideal Spherical Crystal
2.3. The Crystallization Stress of True Porous Media
2.4. Determination of Pore Size Distribution from the Soil Freezing Characteristic Curve
2.4.1. Relationship between Freezing Point and Pore Radius
2.4.2. Determination of Pore Size Distribution from the Unfrozen Water Content
2.5. Formation of Ice Lens
2.5.1. Driving Force of Ice Lens Formation
2.5.2. Constraining Force of Ice Lens Formation
2.5.3. The New Criterion of Ice Lens Formation
3. Experiment Design
3.1. Experiment Materials
3.2. Experiment Methods
3.2.1. Unfrozen Water Content
3.2.2. Tensile Strength
4. Results and Discussions
4.1. Unfrozen Water Content
4.2. Pore Size Distribution
4.3. Microscopic Mean Stress
4.4. Tensile Stress
4.5. Comparison of the Mean Stress and the Tensile Strength
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Soil Type | Maximum Dry Density (g/cm3) | Plastic Limit | Liquid Limit | Plasticity Index | Optimum Water Content |
---|---|---|---|---|---|
Loess | 1.76 | 15.60% | 27.20% | 8.40 | 16.00% |
Experiment Condition | Initial Water Content | Wit Density (g/cm3) | Experiment Temperature (°C) | Soil Sample Diameter (mm) | Soil Sample Height (mm) |
---|---|---|---|---|---|
L1 | 8% | 1.95 | −18.00 | 62.00 | 84.76 |
L2 | 12% | 1.99 | 83.11 | ||
L3 | 16% | 2.04 | 81.16 | ||
L4 | 20% | 2.10 | 78.90 | ||
L5 | 24% | 2.13 | 77.70 | ||
L6 | 28% | 2.17 | 76.15 |
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Liu, Y.; Li, D.; Chen, L.; Ming, F. Study on the Mechanical Criterion of Ice Lens Formation Based on Pore Size Distribution. Appl. Sci. 2020, 10, 8981. https://doi.org/10.3390/app10248981
Liu Y, Li D, Chen L, Ming F. Study on the Mechanical Criterion of Ice Lens Formation Based on Pore Size Distribution. Applied Sciences. 2020; 10(24):8981. https://doi.org/10.3390/app10248981
Chicago/Turabian StyleLiu, Yuhang, Dongqing Li, Lei Chen, and Feng Ming. 2020. "Study on the Mechanical Criterion of Ice Lens Formation Based on Pore Size Distribution" Applied Sciences 10, no. 24: 8981. https://doi.org/10.3390/app10248981
APA StyleLiu, Y., Li, D., Chen, L., & Ming, F. (2020). Study on the Mechanical Criterion of Ice Lens Formation Based on Pore Size Distribution. Applied Sciences, 10(24), 8981. https://doi.org/10.3390/app10248981