Geotechnical Evaluation of Loess Modifications as the Sustainable Compacted Soil Liner Material in Solid Waste Landfill
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Loess Modification Mixtures
2.3. Testing Methods
2.3.1. Compaction Test
2.3.2. Permeation Test
2.3.3. NMR, SEM, and XRD Test
2.3.4. Shear Strength Test
3. Results
3.1. Compaction Test
3.2. The Permeability Coefficient
3.3. NMR Test
3.4. SEM Test
3.5. XRD Test
3.6. Shear Strength Test
4. Conclusions
- 1.
- Attapulgite can significantly reduce the permeability coefficient of loess. The permeability coefficient dropped from 3.0 × 10−6 cm/s to 4.2 × 10−7 cm/s. However, the effect is not obvious when the content of attapulgite exceeds 10%. The permeability coefficient of modified loess can be further reduced by adding 15% lime or 5% cement based on 10% attapulgite content. The permeability coefficient can be reduced to 4.5 × 10−8 cm/s and 9.2 × 10−8 cm/s, respectively, which can meet the impermeability requirements of the landfill site. Through microscopic test and composition analysis, it is found that the anti-seepage mechanism of the loess modified by attapulgite is that attapulgite fills the pores between loess particles. The acicular attapulgite combines with loess to form a flake integral structure, thus reducing the permeability coefficient. When lime and cement are added to loess, calcium aluminate hydrate is created, which binds soil particles together to form a block structure with better overall integrity, reducing the permeability coefficient of the modified soil, among which attapulgite and cement modified loess have the best anti-seepage effect.
- 2.
- According to the static triaxial shear test, the shear strength of the loess modified with attapulgite-lime and the loess modified with attapulgite-cement is greatly improved compared with the pure loess cohesion. The friction angle of the specimen is also increased. The shear strength of the same specimen under unsaturated conditions is more significant than that under saturated conditions. Swelling failure mainly occurred in the loess specimens with low shear strength, and shear failure happened with increased shear strength.
5. Possible Directions for Future Studies
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Particle Size (mm) | Loess (%) | Attapulgite (%) |
---|---|---|
>1.1 | 0.37 | 0 |
1.1–0.25 | 19.43 | 0 |
0.25–0.075 | 23.8 | 0 |
0.075–0.05 | 9.9 | 4.6 |
0.05–0.01 | 28.4 | 67.72 |
0.01–0.005 | 9.1 | 22.7 |
<0.005 | 9.0 | 5.0 |
Liquid Limit, LL | 28.7% | - |
Plastic Limit, PL | 14.9% | - |
Plastic Index, PI | 13.8 | - |
Types of Chemical | Loess (%) | Attapulgite (%) |
---|---|---|
Strontium oxide, SrO | 0.07 | - |
Iron (ii) oxide, Fe2O3 | 6.6 | 5.5 |
Silicon dioxide, SiO2 | 53.0 | 63.3 |
Aluminum oxide, Al2O3 | 15.6 | 11.6 |
Calcium oxide, CaO | 1.95 | 1.14 |
Titanium dioxide, TiO2 | 0.93 | 0.84 |
Potassium oxide, K2O | 3.16 | 1.07 |
Manganese oxide, MnO | 0.13 | 15.58 |
Sodium oxide, Na2O | 2.16 | 0.15 |
Magnesium oxide, MgO | 12.8 | 11.35 |
Phosphorus pentoxide, P2O5 | - | 0.4 |
Initial Jelling Time (min) | Final Setting Time (min) | 3 Days | 28 Days | ||
---|---|---|---|---|---|
Flexural Strength | Compressive Strength | Flexural Strength | Compressive Strength | ||
>45 | <600 | 2.5 MPa | 10 MPa | 5.5 MPa | 32.5 MPa |
Group 1 | Group 2 | Group 3 | |||||
---|---|---|---|---|---|---|---|
Loess (%) | Attapulgite (%) | Loess (%) | Attapulgite (%) | Lime (%) | Loess (%) | Attapulgite (%) | Cement (%) |
98 | 2 | 87 | 10 | 3 | 87 | 10 | 3 |
96 | 4 | 83 | 10 | 7 | 85 | 10 | 5 |
94 | 6 | 80 | 10 | 10 | 83 | 10 | 7 |
92 | 8 | 78 | 10 | 12 | 80 | 10 | 10 |
90 | 10 | 75 | 10 | 15 | 78 | 10 | 12 |
84 | 16 | 70 | 10 | 20 | 75 | 10 | 15 |
Percentage of Attapulgite (%) | Parameter | 2 | 4 | 6 | 8 | 10 | 16 |
---|---|---|---|---|---|---|---|
Group 1 (Loess + %Attapulgite) | OMC 1 (%) | 13.9 | 13.23 | 16.52 | 17.01 | 17.3 | 18.85 |
MDD 2 (g/cm3) | 1.85 | 1.84 | 1.74 | 1.71 | 1.70 | 1.69 | |
Percentage of Lime (%) | Parameter | 3 | 7 | 10 | 12 | 15 | 20 |
Group 2 (Loess + 10%Attapulgite + %Lime | OMC (%) | 17.0 | 17.5 | 17.8 | 18.2 | 19.8 | 21.4 |
MDD (g/cm3) | 1.69 | 1.65 | 1.62 | 1.61 | 1.57 | 1.55 | |
Percentage of Cement (%) | Parameter | 3 | 5 | 7 | 10 | 12 | 15 |
Group 3 (Loess + 10%Attapulgite + %Cement) | OMC (%) | 16.8 | 17.3 | 17.3 | 17.4 | 17.5 | 17.6 |
MDD (g/cm3) | 1.78 | 1.76 | 1.75 | 1.74 | 1.73 | 1.73 |
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Zhang, Z.; Matlan, S.J.; Wang, H.; Pishro, A.A.; Zhang, L.; Gao, X.; Liang, Z.; Liu, X.; Zhao, P. Geotechnical Evaluation of Loess Modifications as the Sustainable Compacted Soil Liner Material in Solid Waste Landfill. Materials 2022, 15, 4982. https://doi.org/10.3390/ma15144982
Zhang Z, Matlan SJ, Wang H, Pishro AA, Zhang L, Gao X, Liang Z, Liu X, Zhao P. Geotechnical Evaluation of Loess Modifications as the Sustainable Compacted Soil Liner Material in Solid Waste Landfill. Materials. 2022; 15(14):4982. https://doi.org/10.3390/ma15144982
Chicago/Turabian StyleZhang, Zhengrui, Siti Jahara Matlan, Hao Wang, Ahad Amini Pishro, Lili Zhang, Xian Gao, Zhao Liang, Xiaoyi Liu, and Peigen Zhao. 2022. "Geotechnical Evaluation of Loess Modifications as the Sustainable Compacted Soil Liner Material in Solid Waste Landfill" Materials 15, no. 14: 4982. https://doi.org/10.3390/ma15144982
APA StyleZhang, Z., Matlan, S. J., Wang, H., Pishro, A. A., Zhang, L., Gao, X., Liang, Z., Liu, X., & Zhao, P. (2022). Geotechnical Evaluation of Loess Modifications as the Sustainable Compacted Soil Liner Material in Solid Waste Landfill. Materials, 15(14), 4982. https://doi.org/10.3390/ma15144982