Effects of Different Degrees of Hydrophobic Treatment on Soil–Water Characteristic Curves and Infiltration Coefficients of Hygroscopic Soils
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Methods
2.2.1. Treatment of Hydrophobic Materials
2.2.2. Preparation of Sample
2.2.3. Sample Treatment
2.2.4. Test of Matrix Suction and Fitting of Soil–Water Characteristic Curve
2.2.5. Statistics
2.2.6. Falling Head Permeability Test
3. Results and Discussion
3.1. Fitting Results of Soil–Water Characteristic Curves
3.2. Effect of Hydrophobicity on SWCCs
3.3. Effect of Hydrophobicity on Air-Entry Value
3.4. Influence of Hydrophobic Degree on Saturated Permeability Coefficient
3.5. Prediction of Unsaturated Permeability Coefficient
3.6. The Influence of Hydrophobic Materials on the Hydrophobicity of Soil
4. Conclusions
- (1)
- The soil–water characteristic curve of soil treated with silicone hydrophobic material decreased obviously. In other words, when the matrix suction was the same, the water content of the soil after hydrophobic treatment was significantly reduced, and, with the increase in the amount of silicone hydrophobic material, the decrease in water content was more obvious. When the matrix suction was 100 kPa, the water content of soil after hydrophobic treatment decreased by 24%–72% compared with that of plain soil.
- (2)
- With the increase in the amount of silicone hydrophobic material, the water holding capacity of soil particles decreased; the maximum decrease in the saturated water content and air-entry value of soil is 44% and 98.96% respectively. When the action time was 2 h, the logarithm of the air-entry value was significantly negatively correlated with the amount of silicone hydrophobic material (correlation coefficient R2 = 0.9856). When the action time was 2 h, the amount of hydrophobic material increased from 0 to 50 g/m2, 70 g/cm2, and 90 g/m2, and the saturated permeability coefficient decreased by 80.6%, 89.02%, and 92.4%.
- (3)
- When the amount of hydrophobic materials was the same and the action time was different, the changes in the soil–water characteristic curve, saturated permeability coefficient, and air-entry value were mainly affected by the water generated during the reaction of hydrophobic materials, and the inflection points appeared at 4 h and 6 h.
- (4)
- The CCG model was used to predict the unsaturated permeability coefficient of soil with different hydrophobic treatments. The results show that the unsaturated permeability coefficient and the matrix suction were significantly negatively correlated in the double-logarithmic coordinate system (correlation coefficient R2 ≥ 0.97).
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Natural Water Content w (%) | Liquid Limit wL (%) | Plastic Limit wP (%) | Plasticity Index Ip (%) | Optimum Moisture Content w (%) | Maximum Dry Density ρd (g/cm3) |
---|---|---|---|---|---|
24.6 (0.45) | 30.7 (0.35) | 19.0 (0.17) | 11.7 | 13.34 | 1.91 |
Soil Type | Amount of Hydrophobic Material (g/m2) | Amount of Hydrophobic Material Solution (g) | Weight of Hydrophobic Material in Solution (g) | Action Time (h) |
---|---|---|---|---|
Plain soil | 0 | 0 | 0 | 0 |
SMS-A2 | 50 | 1.5 | 0.15 | 2 |
SMS-A4 | 4 | |||
SMS-A6 | 6 | |||
SMS-A8 | 8 | |||
SMS-A10 | 10 | |||
SMS-B2 | 70 | 0.21 | 2 | |
SMS-B4 | 4 | |||
SMS-B6 | 6 | |||
SMS-B8 | 8 | |||
SMS-B10 | 10 | |||
SMS-C2 | 90 | 0.27 | 2 | |
SMS-C4 | 4 | |||
SMS-C6 | 6 | |||
SMS-C8 | 8 | |||
SMS-C10 | 10 |
Soil Type | Saturated Water Content (%) | (kPa) | ||
---|---|---|---|---|
Plain soil | 24.86 | 194.89 | 1.2875 | 0.9983 |
SMS-A2 | 22.58 | 94.47 | 1.2755 | 0.9916 |
SMS-A4 | 21.39 | 32.00 | 1.2475 | 0.9970 |
SMS-A6 | 20.39 | 33.69 | 1.2280 | 0.9892 |
SMS-A8 | 19.55 | 45.79 | 1.2578 | 0.9971 |
SMS-A10 | 20.01 | 39.00 | 1.2748 | 0.9921 |
SMS-B2 | 20.87 | 31.36 | 1.2412 | 0.9925 |
SMS-B4 | 19.89 | 14.07 | 1.2437 | 0.9918 |
SMS-B6 | 20.06 | 23.89 | 1.2548 | 0.9922 |
SMS-B8 | 18.63 | 24.05 | 1.2475 | 0.9957 |
SMS-B10 | 16.64 | 17.79 | 1.2392 | 0.9950 |
SMS-C2 | 17.56 | 2.81 | 1.1959 | 0.9874 |
SMS-C4 | 17.67 | 0.75 | 1.1937 | 0.9946 |
SMS-C6 | 16.71 | 2.02 | 1.1932 | 0.9946 |
SMS-C8 | 15.53 | 2.13 | 1.1759 | 0.9947 |
SMS-C10 | 13.92 | 2.58 | 1.2019 | 0.9951 |
Time (h) | 2 | 4 | 6 | 8 | 10 | |
---|---|---|---|---|---|---|
Dosage (g/m2) | ||||||
0 | 32.011 | 32.011 | 32.011 | 32.011 | 32.011 | |
50 | 6.1931 | 2.6822 | 3.2592 | 2.8163 | 2.4425 | |
70 | 3.5160 | 1.8280 | 2.2714 | 1.7051 | 1.5532 | |
90 | 2.4291 | 1.0983 | 1.6726 | 0.8922 | 0.5681 |
Soil Type | a | b | R2 |
---|---|---|---|
Plain soil | −2.17 | −3.02 | 0.97 |
SMS-A2 | −2.16 | −4.87 | 0.97 |
SMS-A4 | −2.16 | −6.13 | 0.98 |
SMS-A6 | −2.16 | −5.88 | 0.98 |
SMS-A8 | −2.16 | −6.3 | 0.98 |
SMS-A10 | −2.16 | −6.28 | 0.98 |
SMS-B2 | −2.15 | −6.40 | 0.98 |
SMS-B4 | −2.15 | −7.70 | 0.98 |
SMS-B6 | −2.15 | −7.13 | 0.98 |
SMS-B8 | −2.15 | −7.56 | 0.98 |
SMS-B10 | −2.15 | −8.3 | 0.98 |
SMS-C2 | −2.13 | −9.98 | 0.99 |
SMS-C4 | −2.12 | −11.64 | 0.99 |
SMS-C6 | −2.24 | −10.87 | 0.98 |
SMS-C8 | −2.12 | −11.49 | 0.99 |
SMS-C10 | −2.12 | −12.11 | 0.99 |
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Li, X.; Zhou, H.; Chen, B.; Song, X.; Liu, Z.; Zhao, J.; Yin, G.; Li, Y.; Zong, Y.; Li, Q.; et al. Effects of Different Degrees of Hydrophobic Treatment on Soil–Water Characteristic Curves and Infiltration Coefficients of Hygroscopic Soils. Coatings 2022, 12, 1424. https://doi.org/10.3390/coatings12101424
Li X, Zhou H, Chen B, Song X, Liu Z, Zhao J, Yin G, Li Y, Zong Y, Li Q, et al. Effects of Different Degrees of Hydrophobic Treatment on Soil–Water Characteristic Curves and Infiltration Coefficients of Hygroscopic Soils. Coatings. 2022; 12(10):1424. https://doi.org/10.3390/coatings12101424
Chicago/Turabian StyleLi, Xiaolong, Haiqing Zhou, Botong Chen, Xiao Song, Ziqiang Liu, Jian Zhao, Guohong Yin, Yuling Li, Yuncui Zong, Qiushi Li, and et al. 2022. "Effects of Different Degrees of Hydrophobic Treatment on Soil–Water Characteristic Curves and Infiltration Coefficients of Hygroscopic Soils" Coatings 12, no. 10: 1424. https://doi.org/10.3390/coatings12101424
APA StyleLi, X., Zhou, H., Chen, B., Song, X., Liu, Z., Zhao, J., Yin, G., Li, Y., Zong, Y., Li, Q., & Han, C. (2022). Effects of Different Degrees of Hydrophobic Treatment on Soil–Water Characteristic Curves and Infiltration Coefficients of Hygroscopic Soils. Coatings, 12(10), 1424. https://doi.org/10.3390/coatings12101424