The Horizontal Bearing Characteristics and Microscopic Soil Deformation Mechanism of Pile-Bucket Composite Foundation in Sand
Abstract
:1. Introduction
2. Model Test
2.1. Horizontal Loading System and Data Acquisition
2.2. Model Box and Model Pile
2.3. Test Sand
2.4. Data and Image Acquisition System
2.5. Test Scheme
3. Analysis of Horizontal Bearing Characteristics
3.1. Analysis of Horizontal Bearing Performance under Different Compactness
3.2. Soil Pressure Distribution Laws
4. Finite Element Calculation Model
4.1. Establishment and Verification of a Model
4.2. Analysis of the Influence of the Pile-Bucket Diameter Ratio on the Bearing Capacity of Composite Foundation
5. Analysis of Deformation Characteristics of Soil around the Foundation
5.1. Analysis of the Deformation Mechanism of Soil around Pile-Bucket Composite Foundation under Different Compactness
5.2. Analysis of the Soil Deformation Mechanism around a Pile-Bucket Composite Foundation under Different Pile-Bucket Diameter Ratios
6. Conclusions
- (1)
- Under identical pile-to-bucket diameter ratios, the horizontal load and displacement curves of the composite foundation exhibit consistent variations across different relative density conditions, dividing into stages of elastic deformation and elastoplastic deformation. Additionally, increased relative density results in a larger horizontal load borne by the bucket foundation in the composite foundation;
- (2)
- Within the same relative density level, the diameter of the bucket foundation in the composite foundation has a significant impact on its horizontal bearing performance. When the pile-bucket diameter ratio is between 0.357 and 0.5, the effect of bucket diameter on the ultimate bearing capacity of the larger composite foundation is relatively minor and follows a linear pattern. However, as the pile-bucket diameter ratio decreases further (≤0.357), the influence of bucket diameter on the ultimate bearing capacity of the composite foundation becomes more substantial;
- (3)
- Across different relative density levels, the shape of the influence range of the surrounding soil in the composite foundation is generally similar. Under loose sand conditions, the influence range extends more to the sides compared to dense sand conditions. A raised area forms on the front soil surface of the composite foundation, while a depression area forms on the rear soil;
- (4)
- Under varying pile-bucket diameter ratios, the depth of influence of the surrounding soil in the composite foundation significantly decreases. As the pile-bucket diameter ratio decreases, the influence of the pile foundation top on the soil in the composite foundation also diminishes.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Physical Properties of Soil | Loose Sand | Medium Dense Sand | Dense Sand |
---|---|---|---|
coefficient of uniformity (Cu) | 1.4 | 1.4 | 1.4 |
coefficient of curvature (Cc) | 1.06 | 1.06 | 1.06 |
maximum dry density pd max (g/cm3) | 1.698 | 1.698 | 1.698 |
minimum dry density pd min (g/cm3) | 1.405 | 1.405 | 1.405 |
relative density Dr (%) | 28~32 | 50~54 | 66~70 |
angle of internal friction (°) | 29 | 33 | 38 |
Dry density of experimental soil sample pd (g/cm3) | 1.482~1.501 | 1.536~1.57 | 1.59~1.613 |
Pile-Bucket Composite Foundation | Relative Density | Horizontal Ultimate Bearing Capacity/N | Growth Ratio/% |
---|---|---|---|
Pile-bucket diameter ratio d/D = 0.5 | loose sand | 2.41 | −51.51 |
medium dense sand | 4.96 | 0.00 | |
dense sand | 6.31 | 27.22 | |
Pile-bucket diameter ratio d/D = 0.417 | loose sand | 3.01 | −50.41 |
medium dense sand | 6.07 | 0.00 | |
dense sand | 6.82 | 12.36 | |
Pile-bucket diameter ratio d/D = 0.357 | loose sand | 3.60 | −41.46 |
medium dense sand | 6.15 | 0.00 | |
dense sand | 7.17 | 16.59 |
Parameter Setting Object | Angle of Friction/° | Elastic Modulus/MPa | ||
---|---|---|---|---|
loose sand medium dense sand dense sand | 29 | 10 | ||
33 | 15.5 | |||
38 | 20 | |||
density/(g/cm3) | elastic modulus/GPa | poisson ratio | ||
Pile-bucket model | 7.85 | 200 | 0.25 |
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Zhang, X.; Yu, D.; Zhu, K.; Zhao, A.; Ren, M. The Horizontal Bearing Characteristics and Microscopic Soil Deformation Mechanism of Pile-Bucket Composite Foundation in Sand. Appl. Sci. 2024, 14, 907. https://doi.org/10.3390/app14020907
Zhang X, Yu D, Zhu K, Zhao A, Ren M. The Horizontal Bearing Characteristics and Microscopic Soil Deformation Mechanism of Pile-Bucket Composite Foundation in Sand. Applied Sciences. 2024; 14(2):907. https://doi.org/10.3390/app14020907
Chicago/Turabian StyleZhang, Xin, Dongmin Yu, Kaifei Zhu, Aolai Zhao, and Minghao Ren. 2024. "The Horizontal Bearing Characteristics and Microscopic Soil Deformation Mechanism of Pile-Bucket Composite Foundation in Sand" Applied Sciences 14, no. 2: 907. https://doi.org/10.3390/app14020907
APA StyleZhang, X., Yu, D., Zhu, K., Zhao, A., & Ren, M. (2024). The Horizontal Bearing Characteristics and Microscopic Soil Deformation Mechanism of Pile-Bucket Composite Foundation in Sand. Applied Sciences, 14(2), 907. https://doi.org/10.3390/app14020907