Theoretical Analysis of Deformation and Internal Forces of Used Piles Due to New Static-Pressure Pile Penetration
Abstract
:1. Introduction
2. Method of Analysis
2.1. Displacement Solutions for the Soil Based on Cavity Expansion
2.2. Displacement Solutions for Surrounding Soil due to Pile Penetration
3. Mechanical Model of the Existing Pile under Adjacent Pile Driving
3.1. Response of Existing Pile Based on Winkler Model
- Case 1:
- (i).
- For i = 0,
- (ii).
- For i = 1,
- (iii).
- For i = n − 1,
- (iv).
- For i = n,
- Case 2:
- (i).
- For i = 0,
- (ii).
- For i = 1,
- (iii).
- For i = n − 1,
- (iv).
- For i = n,
3.2. Response of Existing Pile Based on Pasternak Foundation Model
- (i).
- For a friction pile, the stiffness matrix can be written as:
- (ii).
- For an end-bearing pile, the stiffness matrix can be written as:
4. Simulation of the Response of the Used Pile under New Pile Penetration
4.1. Model Setting
4.2. Comparison of Analytical Solution and Simulation
5. Results and Discussion
5.1. Influence of the Spacing between the Adjacent Pile and Existing Pile
5.2. Influence of the Diameter of the New Pile
5.3. Usage of Pre-Drilling Technology in the New Pile Penetration
6. Conclusions
- The results of this paper’s theoretical analysis and numerical simulation are basically consistent, which indicates that the accuracy of the theoretical solution of this paper is verified.
- The form of the pile end only affects the deformation near the pile end. The influence of the form of the pile end is small and can be considered as the pile end being free when the depth of the new pile is less than the length of the existing pile. When the new pile penetration is close to or beyond the existing pile end, the form of pile end has a greater impact and needs to be considered carefully.
- The distance of new piles from existing piles and the diameter of new piles have a greater influence on the deformation of existing piles. With an increase in pile diameter, the existing pile deformation gradually increases. As the distance between an existing pile and a new pile increases, the existing pile deformation decreases significantly.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameters | Young’s Modulus, E (MPa) | Poisson’s Ratio, ν |
---|---|---|
Soil | 6 | 0.3 |
Existing pile | 20,000 | 0.2 |
New pile | 20,000 | 0.2 |
Auxiliary pipe | 20,000 | 0.2 |
Pile Penetration Depth (m) | Distance Variation (m) | Lateral Displacement Variation (mm) | Amplitude |
---|---|---|---|
10 | 2 to 1.5 | 5.65 | 44.77% |
3 to 2.5 | 2.16 | 30.38% | |
20 | 2 to 1.5 | 5.47 | 36.06% |
3 to 2.5 | 2.06 | 21.06% |
Pile Penetration Depth (m) | Diameter Variation (m) | Lateral Displacement Variation (mm) | Amplitude |
---|---|---|---|
10 | 0.4 to 0.5 | 4.54 | 56.19% |
0.5 to 0.6 | 5.55 | 43.98% | |
20 | 0.4 to 0.5 | 5.46 | 56.23% |
0.5 to 0.6 | 2.06 | 44.03% |
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Cui, J.; Ouyang, P.; Zhang, J.; Yang, Z. Theoretical Analysis of Deformation and Internal Forces of Used Piles Due to New Static-Pressure Pile Penetration. Appl. Sci. 2023, 13, 2714. https://doi.org/10.3390/app13042714
Cui J, Ouyang P, Zhang J, Yang Z. Theoretical Analysis of Deformation and Internal Forces of Used Piles Due to New Static-Pressure Pile Penetration. Applied Sciences. 2023; 13(4):2714. https://doi.org/10.3390/app13042714
Chicago/Turabian StyleCui, Jifei, Peihao Ouyang, Jiani Zhang, and Zhenkun Yang. 2023. "Theoretical Analysis of Deformation and Internal Forces of Used Piles Due to New Static-Pressure Pile Penetration" Applied Sciences 13, no. 4: 2714. https://doi.org/10.3390/app13042714
APA StyleCui, J., Ouyang, P., Zhang, J., & Yang, Z. (2023). Theoretical Analysis of Deformation and Internal Forces of Used Piles Due to New Static-Pressure Pile Penetration. Applied Sciences, 13(4), 2714. https://doi.org/10.3390/app13042714