Analysis of the Dynamic Stability of Tailing Dams: An Experimental Study on the Dynamic Characteristics of Tailing Silt
Abstract
:1. Introduction
2. Content and Methods of Testing
2.1. Test Soil Sample
2.2. Test Apparatus
2.3. Preparation of Samples
2.4. Test Scheme
3. Analysis of the Test Results
3.1. Theoretical Analysis of the Law of Pore Pressure Evolution of Tailing Silt
- (1)
- Confining pressure’s effect on critical pore pressure
- (2)
- Dynamic stress’s effect on critical pore pressure
- (3)
- Sample density’s effect on critical pore pressure
3.2. Law of Dynamic Pore Pressure Development for Tailing Silt under the Same CSR Conditions
3.2.1. Pore Pressure Development Law for Tailing Silt at the Same CSR and Varied Confining Pressures
3.2.2. Pore Pressure Development Law for Higher Density Tailing Silt at the Same CSR and Varied Confining Pressures
3.3. Model of Pore Pressure Growth for Typical Tailing Silt
4. Hysteresis Curve Analysis for Tailing Silt under Cyclic Loading
4.1. Hysteresis Curve Analysis of Typical Tailing Silt
4.2. Energy Dissipation Analysis of Typical Tailing Silt
5. Conclusions
- (1)
- Limit equilibrium theory was used to investigate the effect of various conditions on the sample’s critical pore pressure, , under limit equilibrium. With an increase in confining pressure, the increase in sample density and the decrease in dynamic load can lead to an increase in and enhancement of the liquefaction resistance of the sample.
- (2)
- At the same CSR, the liquefaction resistance of the sample does not rise monotonically as confining pressure rises over time, but changes variably at values near a specific low confining pressure. The specific confining pressure value dramatically reduces when the sample density is merely raised under the same conditions, and the anti-liquefaction strength improves significantly. Therefore, in engineering, the dynamic stability of a tailing pond can be improved by increasing the compactness of tailing silt.
- (3)
- The pore pressure rising trend of the sample is the same under different confining pressures and densities, it can be matched using the BiDoseResp function, and the fitting effect is good.
- (4)
- The development of hysteresis curves of tailing silt can be divided into the elastic strain stage, plastic failure stage, and softening stable stage. The area of each hysteresis curve can be accurately calculated using the matrix formula. With an increasing number of vibrations, the area of the hysteresis curves and the dissipated energy increase gradually. With an increase in confining pressure, the overall dissipation area of the hysteresis curves gradually increases and shows cyclic activity.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Test Number | Density (g/cm3) | CSR | Consolidation Confining Pressure (kPa) | Termination of Cyclic Vibration (Nf) |
---|---|---|---|---|
1-1 | 1.62 | 0.17 | 50 | 460 |
1-2 | 100 | 190 | ||
1-3 | 150 | 97 | ||
1-4 | 200 | 35 | ||
1-5 | 250 | 165 | ||
1-6 | 300 | 295 | ||
1-7 | 400 | 510 | ||
1-8 | 600 | 980 | ||
1-9 | 1000 | No liquefaction | ||
2-1 | 1.67 | 50 | 670 | |
2-2 | 100 | 220 | ||
2-3 | 150 | 380 | ||
2-4 | 200 | 650 | ||
2-5 | 300 | 1120 | ||
2-6 | 600 | No liquefaction | ||
3-1 | 1.70 | 100 | 483 |
Test Number | A1 | A2 | C | h1 | h2 | V1 | V2 | R2 |
---|---|---|---|---|---|---|---|---|
1-1 | −0.114 | 1.077 | 0.751 | 0.003 | 0.009 | 73.56 | 49.5 | 0.992 |
1-2 | −0.173 | 1.302 | 0.503 | 0.006 | 0.017 | 10.12 | 202.3 | 0.993 |
1-3 | −0.334 | 1.464 | 0.475 | 0.014 | 0.030 | 111.23 | 532.42 | 0.990 |
1-4 | −0.203 | 1.112 | 0.521 | 0.026 | 0.14 | 72.64 | 80.37 | 0.994 |
1-5 | −0.295 | 0.997 | 0.759 | 0.015 | 0.207 | 20.30 | 142.52 | 0.995 |
1-6 | −0.286 | 1.413 | 0.533 | 0.026 | 0.322 | 283.57 | 421.42 | 0.994 |
1-7 | −0.301 | 1.018 | 0.698 | 0.031 | 0.457 | 468.38 | 459.39 | 0.996 |
1-8 | −0.072 | 1.213 | 0.701 | 0.044 | 0.422 | 540.58 | 354.85 | 0.991 |
2-1 | −0.322 | 1.206 | 0.363 | 0.014 | 0.006 | 64.57 | 50.72 | 0.992 |
2-2 | −0.271 | 1.023 | 0.664 | 0.042 | 0.018 | 226.65 | 193.97 | 0.997 |
2-3 | −0.155 | 1.200 | 0.609 | 0.153 | 0.032 | 424.57 | 301.25 | 0.991 |
2-4 | −0.204 | 1.197 | 0.563 | 0.168 | 0.178 | 677.57 | 186.89 | 0.990 |
2-5 | −0.121 | 1.316 | 0.691 | 0.188 | 0.544 | 355.87 | 542.07 | 0.995 |
3-1 | −0.103 | 1.143 | 0.642 | 0.342 | 0.159 | 674.5 | 348.4 | 0.990 |
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Kang, F.; Wang, G.; Li, Y.; Cai, B.; Li, S.; Zhao, L.; Li, X. Analysis of the Dynamic Stability of Tailing Dams: An Experimental Study on the Dynamic Characteristics of Tailing Silt. Appl. Sci. 2023, 13, 5250. https://doi.org/10.3390/app13095250
Kang F, Wang G, Li Y, Cai B, Li S, Zhao L, Li X. Analysis of the Dynamic Stability of Tailing Dams: An Experimental Study on the Dynamic Characteristics of Tailing Silt. Applied Sciences. 2023; 13(9):5250. https://doi.org/10.3390/app13095250
Chicago/Turabian StyleKang, Fuqi, Guangjin Wang, Yaoji Li, Binting Cai, Shujian Li, Lei Zhao, and Xiaoshuang Li. 2023. "Analysis of the Dynamic Stability of Tailing Dams: An Experimental Study on the Dynamic Characteristics of Tailing Silt" Applied Sciences 13, no. 9: 5250. https://doi.org/10.3390/app13095250
APA StyleKang, F., Wang, G., Li, Y., Cai, B., Li, S., Zhao, L., & Li, X. (2023). Analysis of the Dynamic Stability of Tailing Dams: An Experimental Study on the Dynamic Characteristics of Tailing Silt. Applied Sciences, 13(9), 5250. https://doi.org/10.3390/app13095250