Physical Model Study of an Intermittent Rainfall-Induced Gently Dipping Accumulation Landslide
Abstract
:1. Introduction
2. Case History
3. Experimental Methodology
3.1. Model Facility and Materials
3.2. Model Similarity
3.3. Instrumentation
3.4. Intermittent Rainfall Modelling
4. Test Results
4.1. Deformation and Failurecharacteristic
4.2. Response of Pore Water Pressure
4.3. Earth Pressure
5. Discussion
6. Conclusions
- (1)
- Intermittent rainfall-induced failures of gently dipping accumulation slopes are characterised by regressive landslides. Firstly, transverse tension cracks are formed on the slope, and the first local failure is caused at the toe of the slope. Following this, the second local failure is triggered at the front of the slope. The third local failure is triggered in the middle of the slope. Finally, the main cracks spread, forming multiple sliding steps and sliding surfaces on the slope. The use of anti-slide piles at the slope foot of the gently sloping accumulation layer can effectively restrain the occurrence of landslides.
- (2)
- Before failure, a gently dipping accumulation layer landslide shows long-term creep deformation, when the clay particles in the soil would converge to the cracks, sliding zone and slope toe with seepage. The increasing creep displacement and increasing saturation thickness from the trailing edge to the leading edge of the slope provide a precondition for the cracking and stage failure of the landslide. Monitoring the displacement, pore water pressure and earth pressure at the foot of the slope may be effective for forecasting and the early warning of this type of landslide.
- (3)
- Shear strength testing of the undisturbed soil showed that when the water table approached the slope surface within this region, the reduced shear strength due to the increase in moisture content was still sufficient to resist local failure. The shear strength of the soil in the saturated zone further decreased with an increase in the clay content, saturated time, creep displacement and creep rate. This eventually led to a sudden increase in pore water pressure and liquefaction of the soil, triggering local failure. In the actual project, slope drainage and waterproofing measures should be taken to prevent the soil at the foot of the slope from being saturated for a long time.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Property | Real Soil | Test Soil |
---|---|---|
Density | 1.95 | 1.95 |
Cohesion | 13.0 | 0.63 |
Internal friction angle | 12.0 | 10.8 |
Poisson’s ratio | 0.26 | 0.28 |
Elastic modulus | 31058 | 2099 |
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Zhong, W.; Zhu, Y.; He, N. Physical Model Study of an Intermittent Rainfall-Induced Gently Dipping Accumulation Landslide. Water 2022, 14, 1770. https://doi.org/10.3390/w14111770
Zhong W, Zhu Y, He N. Physical Model Study of an Intermittent Rainfall-Induced Gently Dipping Accumulation Landslide. Water. 2022; 14(11):1770. https://doi.org/10.3390/w14111770
Chicago/Turabian StyleZhong, Wei, Yuanjia Zhu, and Na He. 2022. "Physical Model Study of an Intermittent Rainfall-Induced Gently Dipping Accumulation Landslide" Water 14, no. 11: 1770. https://doi.org/10.3390/w14111770
APA StyleZhong, W., Zhu, Y., & He, N. (2022). Physical Model Study of an Intermittent Rainfall-Induced Gently Dipping Accumulation Landslide. Water, 14(11), 1770. https://doi.org/10.3390/w14111770