Stability Analysis of Super-Large Special-Shaped Deep Excavation in Coastal Water-Rich Region Considering Spatial Variability of Ground Parameters
Abstract
:1. Introduction
2. Basic Theories
2.1. Digital Characterization of Random Fields
2.2. Soil Characterization Methods
3. Numerical Simulation
3.1. Computational Model
- First, the soil in the stratum is continuously and horizontally distributed.
- Second, the soil is isotropic, its stress–strain varies in the Elasto-Plastic range and obeys the Mohr–Coulomb yield criterion.
- Third, only the self-weight of the soil is considered, not other loads during construction, and the final consolidation settlement of the soil is not considered. The numerical simulation was carried out using finite difference software (i.e., FLAC3D 6.0) for 3D modelling, with solid units for soil and bored cast-in-place pile, and PILE units for lattice columns and larsen steel sheet piles.
3.2. Deterministic Analysis
3.3. Stochastic Analysis
4. Conclusions
- The effect of spatial variability of soil parameters can be effectively included in the study of envelope displacement and surface deformation problems resulting from foundation excavation construction when random field theory and numerical analysis are combined.
- Merely studying the mean function and correlation function of a random field cannot replace studying the entire random field, but they do describe the main statistical characteristics of the random field. Therefore, they often play an important role in solving practical engineering problems. The essence of random field theory is to use homogeneous normal distribution random fields to simulate the spatial distribution of geotechnical parameters, and to characterize the spatial variability and correlation of geotechnical parameters using variance, correlation function and correlation distance.
- The maximum axial force of the pit excavation support is distributed in the center of the buttress truss, while the minimum axial force of the buttress truss mainly occurs in the two sides, the overall distribution of the axial force is small in the two sides and large in the middle and the axial force is larger near the shaped area.
- The reason for the perimeter piles’ tendency to partially rebound out of the pit during the excavation of the bearing platform foundation pit is that, as a result of the soil being unloaded during the excavation process, the triaxial piles mixed with cement outside the bearing platform foundation pit were displaced horizontally to the pit under the active soil pressure of the surrounding soil, forming a “lever” with a specific point serving as a pivot point. This caused the soil outside the pit to bulge, which increased the perimeter piles’ passive soil pressure and partially offset some of the displacements into the pit.
- A uniform distribution and a Gaussian distribution are used to examine the impact of the shear index’s geographic variability on the stability of the foundation pit, provided that an appropriate shear strength index is chosen. By comparison of the soil layer displacement analysis, bored cast-in-place piles displacement analysis and support force analysis by taking spatial variability into account or not, it is discovered that doing so has no discernible effect on the shape of each curve; nonetheless, taking spatial variability into account results in a big displacement value and a tiny support axial force value.
- After taking into account the spatial variability, the soil layer may not deform symmetrically, and the soil will be more affected by the pit excavation in the area of low stiffness.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Construction Simulation Steps | Construction Description | Model Operation |
---|---|---|
1 | Initial stress balance | Activate the silt layer and clay layer, set boundary conditions |
2 | Bored cast-in-place pile and enclosure construction | Activate structural unit (pile) |
3 | Excavation of the foundation pit of the bridge in the framework of Wenhua Road | Assign a 7 m empty model and excavate in two steps. The first step is to activate the beam unit, and the second step is to excavate to the bottom of the pit |
4 | Excavation of foundation pit for medium bridge bearing platform | Assign empty models to each bearing platform foundation pit to solve the balance |
Soil Type | Thickness (m) | Density (kg/m3) | Internal Friction Angle (°) | Cohesion (kPa) | Compression Modulus (MPa) |
---|---|---|---|---|---|
Clay ①1 | 2 | 1840 | 11.8 | 20.4 | 3.45 |
Mucky silty clay ②1 | 4 | 1800 | 15.6 | 8.7 | 3.22 |
Silt ③1 | 8 | 1620 | 9.0 | 9.7 | 1.63 |
Silt ③2 | 12 | 1630 | 13.7 | 9.3 | 1.78 |
Mucky silty clay ②2 | 14 | 1790 | 17.5 | 13.5 | 3.05 |
Soil Type | Cohesion (kPa) | Internal Friction Angle (°) | ||
---|---|---|---|---|
Mean Value μc | CV λc | |||
Clay ①1 | 20.4 | 0.198 | 11.8 | 0.136 |
Mucky silty clay ②1 | 8.7 | 0.265 | 15.6 | 0.188 |
Silt ③1 | 9.7 | 0.075 | 9.0 | 0.088 |
Silt ③2 | 9.3 | 0.047 | 13.7 | 0.131 |
Mucky silty clay ②2 | 13.5 | 0.181 | 17.5 | 0.187 |
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Xu, Z.; Guo, S.; Guo, L.; Guo, P.; Ding, H.; Liu, K.; Xu, B.; Wu, B.; Wu, W.; Wang, Y. Stability Analysis of Super-Large Special-Shaped Deep Excavation in Coastal Water-Rich Region Considering Spatial Variability of Ground Parameters. Water 2024, 16, 98. https://doi.org/10.3390/w16010098
Xu Z, Guo S, Guo L, Guo P, Ding H, Liu K, Xu B, Wu B, Wu W, Wang Y. Stability Analysis of Super-Large Special-Shaped Deep Excavation in Coastal Water-Rich Region Considering Spatial Variability of Ground Parameters. Water. 2024; 16(1):98. https://doi.org/10.3390/w16010098
Chicago/Turabian StyleXu, Zaixing, Shimin Guo, Leilei Guo, Panpan Guo, Huying Ding, Kui Liu, Bao Xu, Bangbiao Wu, Wenbing Wu, and Yixian Wang. 2024. "Stability Analysis of Super-Large Special-Shaped Deep Excavation in Coastal Water-Rich Region Considering Spatial Variability of Ground Parameters" Water 16, no. 1: 98. https://doi.org/10.3390/w16010098
APA StyleXu, Z., Guo, S., Guo, L., Guo, P., Ding, H., Liu, K., Xu, B., Wu, B., Wu, W., & Wang, Y. (2024). Stability Analysis of Super-Large Special-Shaped Deep Excavation in Coastal Water-Rich Region Considering Spatial Variability of Ground Parameters. Water, 16(1), 98. https://doi.org/10.3390/w16010098