Calculation of Displacement-Dependent Active Earth Pressure for Deep Excavations in Soft Soil
Abstract
:1. Introduction
2. Materials and Methods
2.1. Test Apparatus
2.2. Test Specimens
2.3. Testing Program
2.4. Test Results and Analysis
2.5. Model Validation
3. Expression for Displacement-Dependent Active Earth Pressure
3.1. Soil Strain Distribution
3.2. Validation of Earth Pressure Prediction
3.3. Illustrative Example
4. Conclusions
- (1)
- Based on the analysis of the lateral unloading stress path triaxial test results, a hyperbolic model was proposed. The comparison between the predictions and test results showed that the proposed model can successfully estimate the radial stress from the soil strain for soft clay under various initial radial stresses.
- (2)
- According to a basic hypothesis of the soil, a simplified soil strain distribution assumption was applied to allow for the proposal of a displacement-dependent active earth pressure model. The proposed model was validated by comparison with the experimental results, showing it to be a valid model for estimating the magnitude and distribution of active earth pressure, with a consideration of the displacement of the supporting structure. More work needs to be performed given that the prediction deviation resulting from the model reflected a neglect in the interaction between the support structures and the soil mass.
- (3)
- Through an inversion of the proposed model, we confirmed that the earth pressure along the entire depth of the wall could not achieve the active condition simultaneously. This confirmed the validity of our calculation of displacement-dependent active earth pressure for deep excavations. The assumption that the required magnitude of movement of the entire soil in the fully active condition is 1% of the excavation depth is not suitable for a multi-strutted, soft-ground foundation pit; however, this assumption may be reasonable for the retaining walls rotating around the bottom.
- (4)
- The present experimental work is limited to the Nanjing floodplain muddy clay. For more generalizable conclusions, further exploration should be carried out for other soils.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Soil Strata | Layer Thickness (m) | Specific Gravity Gs | Plasticity Index IP (%) | Liquidity Index IL (%) | Unit Weight γ (kN/m3) | Void Ratio e | Water Content Ω (%) | Cohesion c (kPa) | Friction Angle φ (°) |
---|---|---|---|---|---|---|---|---|---|
Fill | 2.61 | 2.72 | 13.4 | 0.64 | 19.12 | 0.78 | 28.4 | 20.1 | 17.4 |
Silty Clay | 2.13 | 2.72 | 12.9 | 0.57 | 19.01 | 0.81 | 28.5 | 17.4 | 19.8 |
Silty | 3.63 | 2.71 | 9.9 | 0.68 | 19.33 | 0.72 | 26.5 | 14.8 | 29.9 |
Muddy Clay | 10.52 | 2.74 | 14.7 | 1.14 | 18.42 | 1.07 | 39.02 | 10.9 | 11.9 |
Silty Clay | 9.69 | 2.74 | 14.9 | 0.43 | 19.59 | 0.74 | 25.3 | 49.3 | 18.3 |
Number | Cell Pressure (kPa) | Axial Pressrue (kPa) | K0 |
---|---|---|---|
1 | 50 | 63 | 0.79 |
2 | 100 | 131 | 0.76 |
3 | 200 | 261 | 0.77 |
Stiffness (MN·m2/m) | m (MN·m4/m) | ||
---|---|---|---|
Support | Concrete Strut | Steel Strut | |
1189.43 | 142.63 | 36.40 | 5.68 |
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Lu, N.; Li, W.; Zhou, J.; Zhou, S. Calculation of Displacement-Dependent Active Earth Pressure for Deep Excavations in Soft Soil. Appl. Sci. 2022, 12, 7289. https://doi.org/10.3390/app12147289
Lu N, Li W, Zhou J, Zhou S. Calculation of Displacement-Dependent Active Earth Pressure for Deep Excavations in Soft Soil. Applied Sciences. 2022; 12(14):7289. https://doi.org/10.3390/app12147289
Chicago/Turabian StyleLu, Nan, Weibin Li, Jingfeng Zhou, and Sen Zhou. 2022. "Calculation of Displacement-Dependent Active Earth Pressure for Deep Excavations in Soft Soil" Applied Sciences 12, no. 14: 7289. https://doi.org/10.3390/app12147289
APA StyleLu, N., Li, W., Zhou, J., & Zhou, S. (2022). Calculation of Displacement-Dependent Active Earth Pressure for Deep Excavations in Soft Soil. Applied Sciences, 12(14), 7289. https://doi.org/10.3390/app12147289