A Three-Dimensional Probabilistic Framework for Stability Assessment of Unsaturated Slopes Under Rainfall Infiltration
Abstract
1. Introduction
2. Methodology
2.1. Seepage Analysis
2.2. Random Field Generation
2.3. Stability Analysis of Unsaturated Slopes
2.4. Reliability Evaluation
2.5. Parameter Basis and Validation
3. Computational Model
3.1. Geometry and Boundary Conditions
3.2. Material Properties and Simulation Setup
4. Results and Discussion
4.1. Transient Seepage Response Under Rainfall
4.2. Reliability Assessment Under Different Rainfall Intensities
4.3. Temporal Dynamics of Reliability Indicators
5. Conclusions
- (1)
- The transient seepage analysis indicates that rainfall-induced slope instability is primarily driven by a dual hydraulic process: the top-down dissipation of shallow matric suction and the bottom-up elevation of the groundwater table at the slope toe. Under intense rainfall, the rapid loss of apparent cohesion in the superficial layer, combined with the decreased effective stress in the expanded saturated zone, provides the fundamental conditions for slope failure.
- (2)
- The mean factor of safety Fs and the failure probability Pf exhibit distinct response patterns to increasing rainfall intensity. While Fs decreases almost linearly due to continuous hydraulic softening, Pf increases non-linearly. The results demonstrate that deterministic evaluations may underestimate the actual sliding risk; for instance, under the rainstorm condition, the slope presents a significant failure probability of 23% even when the mean Fs remains above the critical equilibrium value (Fs = 1.063).
- (3)
- The temporal evolution of the reliability indicators reveals a clear “non-linear accelerated mutation” characteristic in Pf, which contrasts with the smooth, cumulative linear decay of Fs. During the initial stages of rainfall, Pf remains relatively low despite a continuous decline in Fs. A sharp surge in Pf only occurs after a specific duration when the wetting front significantly alters the deep stress field. This suggests that dynamic reliability assessments covering the entire rainfall duration are necessary for effective landslide early warning, rather than relying solely on the decay of instantaneous deterministic safety factors.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| γ (kN/m3) | Shear Strength | Coefficient of Variation | lx | ly | lz | ρc,φ | ||
|---|---|---|---|---|---|---|---|---|
| c (kPa) | φ (°) | COVc | COVφ | |||||
| 20 | 23 | 0 | 0.3 | - | 20 | +∞ | 2 | - |
| Parameters | Value |
|---|---|
| Total unit weight γ/(kN·m−3) | 20 |
| Saturated permeability ks/(m·s−1) | 4.8 × 10−6 |
| Saturated volumetric water content θs | 0.41 |
| Residual volumetric water content θr | 1 × 10−10 |
| VG fitting parameter α/(kPa−1) | 0.0095 |
| VG fitting parameter n | 1.9119 |
| Suction friction angle φb/° | 15 |
| Parameters | Value |
|---|---|
| c′/kPa | 20 |
| φ′/° | 8 |
| COVc | 0.3 |
| COVφ | 0.2 |
| ρc,φ | −0.5 |
| ly/m | 20 |
| lz/m | 2 |
| lx/m | 20 |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Wang, Q.; Ma, Y.; Ren, M.; Liu, H. A Three-Dimensional Probabilistic Framework for Stability Assessment of Unsaturated Slopes Under Rainfall Infiltration. Water 2026, 18, 1099. https://doi.org/10.3390/w18091099
Wang Q, Ma Y, Ren M, Liu H. A Three-Dimensional Probabilistic Framework for Stability Assessment of Unsaturated Slopes Under Rainfall Infiltration. Water. 2026; 18(9):1099. https://doi.org/10.3390/w18091099
Chicago/Turabian StyleWang, Qingguo, Yabing Ma, Mingyang Ren, and Heng Liu. 2026. "A Three-Dimensional Probabilistic Framework for Stability Assessment of Unsaturated Slopes Under Rainfall Infiltration" Water 18, no. 9: 1099. https://doi.org/10.3390/w18091099
APA StyleWang, Q., Ma, Y., Ren, M., & Liu, H. (2026). A Three-Dimensional Probabilistic Framework for Stability Assessment of Unsaturated Slopes Under Rainfall Infiltration. Water, 18(9), 1099. https://doi.org/10.3390/w18091099
