Effect of Superhydrophobic Nano-SiO2 on the Hydraulic Conductivity of Expansive Soil and Analysis of Its Mechanism
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Sample Preparation
2.3. Test Methods
2.3.1. Hydraulic-Conductivity Test
2.3.2. Nuclear Magnetic Resonance (NMR)
2.3.3. Fourier Transform Mid-Infrared (FTIR) Spectroscopy
2.3.4. Contact Angle Measurement
2.3.5. Thermogravimetric Analysis
3. Hydraulic Conductivity of Soil Samples with Various SiO2 Contents
4. Test Results and Mechanism Analysis
4.1. Effect of Nano-SiO2 on the PSD of Soil Samples
4.2. Effect of Nano-SiO2 on the FTIR Spectra of Soil Samples
4.3. Effect of Nano-SiO2 on the Hydrophobicity of Soil Samples
4.4. Effect of Nano-SiO2 on the TGA Curves of Soil Samples
4.5. Mechanism of Superhydrophobic Nano-SiO2 on the PSD of Soil Samples
5. Correlation between Hydraulic Conductivity and PSD of Modified Soil Samples
6. Conclusions
- (1)
- The hydraulic conductivity of soil samples decreased with increasing superhydrophobic nano-SiO2 content.
- (2)
- The PSD of expansive soil was changed by adding superhydrophobic nano-SiO2. After the hydraulic-conductivity test, the pore radius of micropore, medium pore, and macropore of modified soil was smaller than that of unmodified soil. This finding indicated that the pore volume of soil samples decreased with increasing nano-SiO2 content in the range of 0.0–1.0%.
- (3)
- FTIR results indicated that the silanol on the nano-SiO2 surface reacted with the silanol on the surface of quartz to form new siloxane (=Si–O–Si=) after adding nano-SiO2, causing the nano-SiO2 to adhere onto the surface of the soil particles and thus reducing the hydrophilicity of expansive soil. After adding superhydrophobic nano-SiO2, the contact angle of samples increased from 15° to 67°. And TGA results revealed that the content of interlayer water and adsorbed water in montmorillonite decreased after adding superhydrophobic nano-SiO2.
- (4)
- Based on the above test results, it can be stated that superhydrophobic nano-SiO2 could reduce the hydraulic conductivity by changing the PSD of expansive soil. It had an excellent linear relationship with the hydraulic conductivity and permeable pore volume of samples containing different nano-SiO2 contents.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
List of Symbols
shape factor | |
() | hydraulic conductivity |
() | permeability |
() | radius of pores |
() | radius of curvature |
() | radius of curvature |
S () | surface area |
() | relaxation time |
() | bulk fluid relaxation time |
() | diffusion relaxation time |
() | geometric mean value of spectrum |
() | surface relaxation time |
() | pore volume |
() | relaxation coefficient |
() | density of water |
(%) | porosity |
() | hydraulic pressure |
() | capillary pressure |
() | surface tension of water |
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Properties | Value |
---|---|
Specific gravity | 2.64 |
Sand (2 mm ≥ d > 0.075 mm) (%) | 2.0 |
Silt (0.075 mm ≥ d > 0.005 mm) (%) | 43.0 |
Clay (d ≤ 0.005 mm) (%) | 55.0 |
Free swelling ratio (%) | 52.0 |
Liquid limit (%) | 48.3 |
Plastic limit (%) | 22.8 |
Optimum water content (%) | 18.0 |
Maximum dry density (g/cm3) | 1.78 |
Properties | Value |
---|---|
Nano type | Hydrophobic nano-SiO2 |
SiO2 purity (%) | 99 |
Average particle size (nm) | 20 |
Specific surface area (m2/g) | 180 |
PH | 5.5–6.5 |
Colour | White |
Contact angle (°) | 151.9 |
SiO2 Content (%) | Total Pore Volume (cm3) | ||||
---|---|---|---|---|---|
r < 0.01 | 0.01 ≤ r < 0.1 | 0.1 ≤ r < 1 | 1 ≤ r | ||
Volume (cm3) | |||||
0 | 68.5 | 0.97 | 39.60 | 25.17 | 2.73 |
0.2 | 67.4 | 1.11 | 41.75 | 22.27 | 3.38 |
0.4 | 66.3 | 1.15 | 41.72 | 20.64 | 2.79 |
0.6 | 63.0 | 1.13 | 40.70 | 19.20 | 1.97 |
0.8 | 61.7 | 1.25 | 41.10 | 16.74 | 2.47 |
1.0 | 59.6 | 1.38 | 41.98 | 14.33 | 1.91 |
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Luo, X.; Kong, L.; Bai, W. Effect of Superhydrophobic Nano-SiO2 on the Hydraulic Conductivity of Expansive Soil and Analysis of Its Mechanism. Appl. Sci. 2023, 13, 8198. https://doi.org/10.3390/app13148198
Luo X, Kong L, Bai W. Effect of Superhydrophobic Nano-SiO2 on the Hydraulic Conductivity of Expansive Soil and Analysis of Its Mechanism. Applied Sciences. 2023; 13(14):8198. https://doi.org/10.3390/app13148198
Chicago/Turabian StyleLuo, Xiaoqian, Lingwei Kong, and Wei Bai. 2023. "Effect of Superhydrophobic Nano-SiO2 on the Hydraulic Conductivity of Expansive Soil and Analysis of Its Mechanism" Applied Sciences 13, no. 14: 8198. https://doi.org/10.3390/app13148198
APA StyleLuo, X., Kong, L., & Bai, W. (2023). Effect of Superhydrophobic Nano-SiO2 on the Hydraulic Conductivity of Expansive Soil and Analysis of Its Mechanism. Applied Sciences, 13(14), 8198. https://doi.org/10.3390/app13148198