Study on Soil Displacement Fields around the Expanded Body of Drill-Expanded Concrete Piles Based on DIC Technique
Abstract
:1. Introduction
2. Materials and Methods
2.1. Test Soil
- (1)
- The impact of drilling and expanding on the soil around the pile during construction is not considered;
- (2)
- The non-uniformity of the disturbed soil around the pile is not considered.
2.1.1. Undisturbed Soil
2.1.2. Sand
2.2. Model Pile
2.3. Painting Preparation for Undisturbed Soil
2.4. Experiment Equipment
3. Digital Image Correlation (DIC) Technology
4. Results and Discussion
4.1. Load–Settlement Curve
4.2. Pile–Soil Separation Characteristics
4.3. Soil Displacement Field around Expanded Body
4.4. Relationship between Soil Displacement and Load around the Expanded Body
4.4.1. Displacement of the Soil at Different Positions from the Pile
4.4.2. Soil Displacement at Different Burial Depths
4.4.3. Soil Displacement at Different Burial Depths under the Pile Bottom
5. Numerical Simulation
6. Conclusions
- (1)
- There is a clear compression zone both in the undisturbed soil and sand under the expanded body, and the compression zone has a much higher soil displacement magnitude and density than other areas. In the undisturbed soil, there is an obvious separation area between the expanded body and the soil, which is not obvious in the sand, but there is a collapse area around the pile on the top of the sand.
- (2)
- In the undisturbed soil and sand tests, the displacement trend of the soil around the pile is basically the same. The closer the soil is to the expanded body, the greater the vertical displacement, and the variation of vertical displacement with the load is essentially the same as that of the pile. The horizontal soil displacement close to the expanded body first moves towards the pile body and then moves away from the pile body; the horizontal soil displacement far away from the expanded body moves away from the pile. The closer soil is to the pile bottom, the greater the vertical displacement under load. As the depth increases, the displacement gradually decreases.
- (3)
- Through numerical simulation, it can be found that the displacement of the soil around the pile is basically consistent with those of the model test, which shows that the model test results are reliable.
- (4)
- By using a half-face pile model test and digital image correlation technology, it is possible to measure the dynamic deformation process of the soil around the pile under load with greater accuracy, to quickly and effectively obtain the soil displacement field around the pile and to more intuitively display the dynamic changes of soil displacement around the pile with the load.
- (5)
- For clay, although the surface of the soil around the pile will not significantly collapse under the load, there is a clear separation zone between the soil and the top surface of the expanded body, and the lateral friction resistance of the soil in the separation zone will be reduced. Thereby, the bearing capacity will be affected; but for sand, the soil above the expanded body will move down with the pile under the load, forming a collapse on the surface. Those should be considered in actual engineering construction.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameters | Values |
---|---|
Density (g/cm3) | 1.61 |
Liquid limit water content (%) | 36.9 |
Plastic limit water content (%) | 20.06 |
Plasticity Index | 16.84 |
Natural water content (%) | 22 |
Parameters | Values |
---|---|
Particle size (mm) | 0.425–0.85 |
Minimum dry density (g/cm3) | 1.1 |
Maximum dry density (g/cm3) | 1.75 |
Silica content (%) | 99 |
Internal friction angle (°) | 45.17 |
Materials | Pile | Soil |
---|---|---|
Density (×103 kg/m3) | 7.85 | 1.8 |
Elastic Modulus (MPa) | 20e4 | 25 |
Poisson’s ratio | 0.2 | 0.35 |
Cohesion (MPa) | — | 0.04355 |
Internal friction angle (°) | — | 10.7 |
Expansion angle (°) | — | 10.7 |
Pile-soil friction coefficient | 0.3 |
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Xu, L.; Deng, H.; Niu, L.; Qian, Y.; Song, D. Study on Soil Displacement Fields around the Expanded Body of Drill-Expanded Concrete Piles Based on DIC Technique. Appl. Sci. 2021, 11, 9097. https://doi.org/10.3390/app11199097
Xu L, Deng H, Niu L, Qian Y, Song D. Study on Soil Displacement Fields around the Expanded Body of Drill-Expanded Concrete Piles Based on DIC Technique. Applied Sciences. 2021; 11(19):9097. https://doi.org/10.3390/app11199097
Chicago/Turabian StyleXu, Lina, Haoyun Deng, Lei Niu, Yongmei Qian, and Daohan Song. 2021. "Study on Soil Displacement Fields around the Expanded Body of Drill-Expanded Concrete Piles Based on DIC Technique" Applied Sciences 11, no. 19: 9097. https://doi.org/10.3390/app11199097
APA StyleXu, L., Deng, H., Niu, L., Qian, Y., & Song, D. (2021). Study on Soil Displacement Fields around the Expanded Body of Drill-Expanded Concrete Piles Based on DIC Technique. Applied Sciences, 11(19), 9097. https://doi.org/10.3390/app11199097