Model and Experimental Studies of the Seepage Failure of Damaged Geotextile at the Joint between Tubes in a Geotextile Tube Dam
Abstract
:1. Introduction
2. Critical Gradient Theoretical Model
2.1. Vertical Stress Calculation
2.2. Force Analysis of Seepage Failure
3. Sand Erosion Tests by Upward Seepage Flow
3.1. Test Apparatus and Materials
3.2. Testing Program and Procedures
- Before the sand seepage erosion tests, the steady-flow chamber, sand chamber, stainless-steel perforated plate, and filter cloth were assembled successively, as shown in Figure 5. To ensure the homogeneity of the sand sample, the sand was compacted layer by layer with a thickness of 4 cm per layer. Each layer was compacted with a metal rod several times to the target relative density. This process was repeated until the sand was filled to the top of the sand chamber. During sand filling, pore-water sensors were placed at predetermined positions.
- The geotextile with the hole and the acrylic cylinder of the overflow chamber were placed successively after the surface of the sand sample was flattened. Then, the hard stainless-steel mesh and the load-bearing platform were installed. In the end, the overflow chamber was secured by bolting the cover plate and flange.
- In the process of specimen saturation, the required overburden load was first applied through the loading device. Second, water from the external tank was slowly introduced into the specimen through the steady-flow chamber. To avoid sand particle disturbance, the saturation process must be slow. Then, the sand was soaked for 12 h under a static head to ensure a high degree of saturation.
- Starting with zero differential head, the water tank was first raised by 3 cm (hydraulic gradient = 0.15). During this period, the pore-water pressure and the seepage rate were recorded using a measuring cylinder under the overflow pipe every 2 min, and the corresponding hydraulic conductivity was calculated. If there is no change in the water pressure and seepage rate for two consecutive times and no notable seepage channel is observed, then the sand sample is considered to be stable. After another 20 min under this hydraulic gradient, the hydraulic gradient was increased by raising the tank another 3 cm. This process was repeated until hydraulic conductivity changed by more than 20%. For the remainder of the test, the differential head was increased in small increments of 1 cm (hydraulic gradient = 0.05). The test progressed until the sand sample completely failed.
4. Test Results and Analysis
Seepage Failure Progression
5. Discussion
5.1. Effect of the Overburden Load
5.2. Effect of the Hole
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Geotextile Type | Ma | Tgt | kn | n | O90 | Ts | εu | Tc |
---|---|---|---|---|---|---|---|---|
Woven polypropylene | 170 | 0.68 | 6.7 × 10−3 | 85 | 0.12 | 75 × 75 | 17.8 × 17.8 | 3.4 |
Soil Type | Cu | Cc | Gs | k | e0 | φ | Jt |
---|---|---|---|---|---|---|---|
Quartz sand | 2.6 | 1.1 | 2.65 | 3.5 × 10−3 | 42.8 | 30° | 1.155 |
Load (kPa) | 0 | 5 | 10 | 20 | 30 | |
---|---|---|---|---|---|---|
Radius (cm) | ||||||
0.5 | 3.52 | 4.64 | 5.12 | 5.36 | 5.52 | |
1 | 3.12 | 4.16 | 4.8 | 5.28 | 5.44 | |
1.5 | 2.96 | 3.92 | 4.64 | 5.2 | 5.36 | |
2 | 2.88 | 3.76 | 4.56 | 5.2 | 5.36 |
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Mao, W.; Wang, T.; Shu, Y. Model and Experimental Studies of the Seepage Failure of Damaged Geotextile at the Joint between Tubes in a Geotextile Tube Dam. Water 2022, 14, 3934. https://doi.org/10.3390/w14233934
Mao W, Wang T, Shu Y. Model and Experimental Studies of the Seepage Failure of Damaged Geotextile at the Joint between Tubes in a Geotextile Tube Dam. Water. 2022; 14(23):3934. https://doi.org/10.3390/w14233934
Chicago/Turabian StyleMao, Wenlong, Tianwen Wang, and Yiming Shu. 2022. "Model and Experimental Studies of the Seepage Failure of Damaged Geotextile at the Joint between Tubes in a Geotextile Tube Dam" Water 14, no. 23: 3934. https://doi.org/10.3390/w14233934
APA StyleMao, W., Wang, T., & Shu, Y. (2022). Model and Experimental Studies of the Seepage Failure of Damaged Geotextile at the Joint between Tubes in a Geotextile Tube Dam. Water, 14(23), 3934. https://doi.org/10.3390/w14233934