Numerical Investigation on the Interaction between a U-Shaped Pile Supporting Structure and an Adjacent Gravity Retaining Wall in River Dredging
Abstract
:1. Introduction
2. Project Profile
3. Finite Element Modeling
3.1. Model Geometry Boundary Conditions
3.2. Model Analysis Steps
4. Results and Discussion
4.1. The Influence of Pile Length
4.1.1. The Analysis of the Pile Length’s Effects on the Bearing Characteristics of the USCSP
4.1.2. The Influence of Pile Length on the Bearing Characteristics of the Retaining Walls
4.2. Effect of U-Shaped Sheet Pile Section Size
4.2.1. Effect of Cross-Sectional Dimensions on the Bearing Characteristics of the U-Shaped Piles
4.2.2. Influence of Cross-Sectional Dimensions on the Bearing Characteristics of the Retaining Walls
4.3. Pile–Wall Spacing Factor Analysis
4.3.1. Influence of Pile–Wall Spacing on the Bearing Characteristics of the USCSP
4.3.2. The Influence of the Pile–Wall Gap on the Bearing Characteristics of Retaining Walls
4.4. Effect of the Height of the Retaining Wall
5. Conclusions
- ➢
- It is necessary to comprehensively consider the overall structural safety in line with the internal force and deformation of supporting piles and retaining walls. The increase in sheet piles is able to significantly reduce the horizontal displacement of the pile body and the existing retaining wall after excavation but increases the pile body stress and the retaining wall back soil pressure at the same time. Therefore, the pile length design should be a comprehensive process to combine the pile body material strength with existing retaining wall stability.
- ➢
- When the cross-sectional size of the USCSP increases, the bending resistance of its cross-section is improved, and the horizontal displacement at the pile’s top and the stress in the pile is reduced. In addition, the horizontal displacement of the retaining wall gradually decreases, and the tendency of rotation gradually slows down. The type I plate is not suitable for application in this project and cannot meet the tensile strength requirements of C60 concrete.
- ➢
- With the pile–wall spacing expanding, the interaction effect between the supporting structure and the retaining wall caused by excavation unloading is gradually weakened, the horizontal displacement of the pile body, pile stress, and horizontal displacement of the retaining wall are gradually reduced, and the soil pressure of the retaining wall’s back is increased.
- ➢
- As the retaining wall grows, the passive resistance of the soil in front of the wall grows when the retaining wall retains its stability, which results in a constant increase in the horizontal displacement of the pile and pile stress after excavation. In this study, a new type of support structure, a U-shaped concrete sheet pile, was used for numerical simulation to provide guidance for the future application of U-shaped concrete sheet piles in various support projects. Due to the limitations of the numerical simulation software, it is impossible to fully consider the various influencing factors in real engineering. Thus, this study focuses on analyzing the effects of overall structural safety.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Soil Layer Number | Designation | Thickness (m) | Poisson’s Ratio | Young’s Modulus (MPa) | Density (kg/m3) | Friction Angle (°) | Cohesive Force (kPa) |
---|---|---|---|---|---|---|---|
1 | Silt | 2 | 0.35 | 5.1 | 1630 | 13 | 8 |
2 | Powdery clay | 8.3 | 0.33 | 12.6 | 1860 | 20 | 10 |
3 | Powdered fine sand | 15 | 0.33 | 20 | 1890 | 20 | 18 |
4 | Asphalt concrete | 0.15 | 0.3 | 1200 | 2400 |
Cross-Section Type | Type I Plate | Type II Plate | Type III Plate |
---|---|---|---|
Plate thickness (mm) | 120 | 160 | 200 |
Cross-sectional width (mm) | 1000 | 1200 | 1500 |
Cross-sectional height (mm) | 500 | 900 | 1200 |
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Yan, J.; Qin, Z.; Jiang, N.; Zhou, L.; Chen, Z.; Niu, Y.; Zhang, Y. Numerical Investigation on the Interaction between a U-Shaped Pile Supporting Structure and an Adjacent Gravity Retaining Wall in River Dredging. Appl. Sci. 2023, 13, 6738. https://doi.org/10.3390/app13116738
Yan J, Qin Z, Jiang N, Zhou L, Chen Z, Niu Y, Zhang Y. Numerical Investigation on the Interaction between a U-Shaped Pile Supporting Structure and an Adjacent Gravity Retaining Wall in River Dredging. Applied Sciences. 2023; 13(11):6738. https://doi.org/10.3390/app13116738
Chicago/Turabian StyleYan, Jiaqi, Zipeng Qin, Ning Jiang, Linzhen Zhou, Zengran Chen, Yaqiang Niu, and Yu Zhang. 2023. "Numerical Investigation on the Interaction between a U-Shaped Pile Supporting Structure and an Adjacent Gravity Retaining Wall in River Dredging" Applied Sciences 13, no. 11: 6738. https://doi.org/10.3390/app13116738
APA StyleYan, J., Qin, Z., Jiang, N., Zhou, L., Chen, Z., Niu, Y., & Zhang, Y. (2023). Numerical Investigation on the Interaction between a U-Shaped Pile Supporting Structure and an Adjacent Gravity Retaining Wall in River Dredging. Applied Sciences, 13(11), 6738. https://doi.org/10.3390/app13116738