Performances of the Soil–Bentonite Cutoff Wall Composited with Geosynthetic Clay Liners: Large-Scale Model Tests and Numerical Simulations
Abstract
:1. Introduction
2. Materials
2.1. Soil Properties
2.2. Hydraulic Conductivity of the GCL
3. Large-Scale Model Testing on the GCL Overlap
3.1. Test Program
3.2. Testing Apparatus
3.3. Test Setup and Procedures
3.4. Flow Flux through the Overlapped GCL Panels
4. Numerical Modeling of the Soil–Bentonite Cutoff Wall Connected with the GCL
4.1. Mathematical Formulation
4.2. Model Calibration
4.3. Finite Element Model Features
4.4. Parameters
4.5. Results and Discussions
4.5.1. Relative Concentration in the GCL–SB Composite Cutoff Wall with Supplemental Bentonite at the Overlap
4.5.2. Effects of Supplemental Bentonite Applied at the GCL Overlap
4.5.3. Effects of Hydraulic Head Applied at the GCL Overlap
5. Conclusions
- (1)
- Compared with the flexible wall permeameter, the developed apparatus with an internal dimension of 1.2 m × 0.7 m can guarantee full field-scale GCL overlap to be tested. The edge effect of the permeameter cell is reduced, and the loss of bentonite near edges due to the cut can be avoided. Additionally, the specimen is placed between two containers and sealed at the edge of 50 mm with adhesive and flanges such that the leakage of water through the container wall can be avoided;
- (2)
- A negative relationship is demonstrated between the effective hydraulic conductivity and the confining stress of the GCL overlap. As the confining stress increases from 10 to 150 kPa, the effective hydraulic conductivity decreases from 10−8 to 10−9 cm/s. Furthermore, the addition of supplemental bentonite paste with a water-to-bentonite ratio of 19:1 contributes to reducing the effective hydraulic conductivity by 60% compared with that for a GCL overlap with no bentonite;
- (3)
- The breakthrough time for the vertical barrier was 64% longer by using GCLs in comparison with that of the SB wall. The breakthrough is made for the entire SB wall while at the shallow 0.9 m depth for the composite wall with bentonite at the overlap after 50 years. Considering that the depth of the groundwater table is generally greater than 1 m, the GCL–SB composite cutoff wall will exhibit a good performance in containing groundwater contaminants in the field;
- (4)
- For engineering practice, it is recommended to extend the breakthrough time of the GCL–SB composite cutoff wall to 92 years by applying supplemental bentonite paste with a water-to-bentonite ratio of 19:1 at the GCL overlap and reducing the difference in the hydraulic head to 0.1 m between the inboard and outboard sides of the barrier.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Mineral | Value |
---|---|
Montmorillonite (%) | 68.2 |
Albite (%) | 23.4 |
Calcite (%) | 6.3 |
Quartz (%) | 2.1 |
Parameter | Value |
---|---|
Specific gravity, Gs, (-) | 2.67 |
Liquid limit, wL, (-) | 258% |
Plastic limit, wP, (-) | 31% |
Plasticity index, Ip, (-) | 227% |
Particle < 0.075 mm, (-) | 90% |
Swelling index in water, (mL/2 g) | 25 |
Swelling index in CaCl2 solution, (mL/2 g) | 20.5 |
Filtrate volume, (mL) | 12.6 |
Soil Layer | nf (-) | Dd (m2/s) | Rd (-) |
---|---|---|---|
Aquifer | 0.5 | 5 × 10−10 | 1 |
SB | 0.6 | 2.34 × 10−10 | 15 |
GCL | 0.9 | 3 × 10−10 | 15 |
Aquitard | 0.3 | 5 × 10−10 | 1 |
Fracture | 1 | 5 × 10−10 | / |
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Zhan, L.-T.; Cao, L.-F.; Zhao, R.; Ding, Z.-H.; Xie, S.-P.; Chen, Y.-M. Performances of the Soil–Bentonite Cutoff Wall Composited with Geosynthetic Clay Liners: Large-Scale Model Tests and Numerical Simulations. Sustainability 2023, 15, 1886. https://doi.org/10.3390/su15031886
Zhan L-T, Cao L-F, Zhao R, Ding Z-H, Xie S-P, Chen Y-M. Performances of the Soil–Bentonite Cutoff Wall Composited with Geosynthetic Clay Liners: Large-Scale Model Tests and Numerical Simulations. Sustainability. 2023; 15(3):1886. https://doi.org/10.3390/su15031886
Chicago/Turabian StyleZhan, Liang-Tong, Lin-Feng Cao, Rui Zhao, Zhao-Hua Ding, Shi-Ping Xie, and Yun-Min Chen. 2023. "Performances of the Soil–Bentonite Cutoff Wall Composited with Geosynthetic Clay Liners: Large-Scale Model Tests and Numerical Simulations" Sustainability 15, no. 3: 1886. https://doi.org/10.3390/su15031886
APA StyleZhan, L. -T., Cao, L. -F., Zhao, R., Ding, Z. -H., Xie, S. -P., & Chen, Y. -M. (2023). Performances of the Soil–Bentonite Cutoff Wall Composited with Geosynthetic Clay Liners: Large-Scale Model Tests and Numerical Simulations. Sustainability, 15(3), 1886. https://doi.org/10.3390/su15031886