Experimental Evaluation of the Bending Behavior of a Drilled Shaft with Partial Casing under Lateral Loads
Abstract
:1. Introduction
2. Experimental Program for Field Tests
2.1. Experimental Procedure
2.2. Test Results
3. Laboratory Tests
3.1. Experimental Procedure
3.2. Test Results
3.3. Effects of Different Parameters on the Bending Behaviour
3.3.1. Effect of the Bond Quality
3.3.2. Effect of the Casing Thickness
3.4. Strain along the Pile Section
4. Conclusions
- (1).
- In the field test, with the increase of the loads, there was no relative displacement between the concrete and the casing, and the casing and the concrete body of the pile deformed as an assembly. Therefore, it was suitable to use the plane cross-section assumption in the calculation. However, a correction coefficient that related to the loading level needed to be considered in the calculation of the bending stiffness.
- (2).
- From the laboratory studies, the bending capacities of those specimens were similar, the slurry condition had limited influence on the moment capacity of the specimens in terms of elastic stiffness and ductility, and the slurry condition had a negative influence on the bond quality. The plane cross-section assumption was reasonable to use in the calculation of bending capacity at low bending moments, and the influence of the casing thickness should be considered in the calculation of the section stiffness of DSPCs.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Material Type | Modulus of Elasticity E/GPa | Poisson’s Ratio ν | Yield Strength fy/MPa | Tensile Strength fu/MPa |
---|---|---|---|---|
Q235b | 210 | 0.286 | 235 | 412 |
Specimen ID | Diameter (D/mm) | Thickness (t/mm) | Length (L/mm) | D/t | Mud Skin Condition |
---|---|---|---|---|---|
B-1 | 426 | 5 | 4000 | 85.2 | no |
B-2 | 426 | 10 | 4000 | 42.6 | no |
B-3 | 426 | 5 | 4000 | 85.2 | thin |
B-4 | 426 | 10 | 4000 | 42.6 | thin |
B-5 | 426 | 5 | 4000 | 85.2 | thick |
B-6 | 426 | 10 | 4000 | 42.6 | thick |
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Li, X.; Dai, G.; Yang, X.; Yin, Q.; Zhu, W.; Zhang, F. Experimental Evaluation of the Bending Behavior of a Drilled Shaft with Partial Casing under Lateral Loads. Appl. Sci. 2021, 11, 9469. https://doi.org/10.3390/app11209469
Li X, Dai G, Yang X, Yin Q, Zhu W, Zhang F. Experimental Evaluation of the Bending Behavior of a Drilled Shaft with Partial Casing under Lateral Loads. Applied Sciences. 2021; 11(20):9469. https://doi.org/10.3390/app11209469
Chicago/Turabian StyleLi, Xiaojuan, Guoliang Dai, Xueying Yang, Qian Yin, Wenbo Zhu, and Fan Zhang. 2021. "Experimental Evaluation of the Bending Behavior of a Drilled Shaft with Partial Casing under Lateral Loads" Applied Sciences 11, no. 20: 9469. https://doi.org/10.3390/app11209469
APA StyleLi, X., Dai, G., Yang, X., Yin, Q., Zhu, W., & Zhang, F. (2021). Experimental Evaluation of the Bending Behavior of a Drilled Shaft with Partial Casing under Lateral Loads. Applied Sciences, 11(20), 9469. https://doi.org/10.3390/app11209469