Field Test Study on Vertical Bearing Characteristics of Coal Rock
Abstract
:1. Introduction
2. Materials and Methods
2.1. Project Background
2.1.1. Construction Site Conditions
2.1.2. Foundation Design Considerations
2.2. Field Tests
2.2.1. Test Plan
2.2.2. Plate Load Test
2.2.3. Bi-Directional Load Test
3. Results
3.1. Plate Load Test
3.1.1. Pressure–Settlement Responses
3.1.2. Bearing Capacity
3.1.3. Deformation Modulus
3.2. Bi-Directional Load Test
3.2.1. Load–Displacement Responses
3.2.2. Mobilized Tip Resistance
3.2.3. Deformation Modulus
3.2.4. Mobilized Side Resistance
4. Discussion
5. Conclusions
- According to the results of the plate load test, the pressure–settlement curve of the coal rock is a steep-drop-type. The deformation modulus can be calculated from the Boussinesq solution. Under the working load, the deformation modulus is close to constant. Beyond the working load, the deformation modulus decreases with the increase in pressure, and the relationship between the two is an exponential function.
- The bi-directional load test in which the load cell is placed at the bottom of the pile can be used to directly obtain the tip resistance–displacement curve and the side resistance–displacement curve, so as to obtain the load transfer function of the tip resistance and the side resistance.
- The characteristics of the pile tip resistance of coal rock are: the tip resistance–displacement curve is steep-drop-type, and the distribution of the test points before failure is close to a straight line; the displacement value corresponding to the ultimate bearing capacity is about 1% of the pile diameter. The load transfer function of the unit tip resistance of coal rock is an ideal elastic–plastic curve. The deformation modulus can be calculated from the Mindlin solution. Under the working load, the deformation modulus is close to constant. Beyond the working load, the deformation modulus decreases with the increase in pressure.
- The load transfer function of the unit side resistance of coal rock is a hyperbola.
- According to the ideal elastic–plastic load transfer function of the unit tip resistance and the hyperbolic load transfer function of the unit side resistance, the equivalent pile top load–settlement curve is obtained, which is in good agreement with the results of the bi-directional load test method.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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No. | Initial Load (kPa) | Load Increment (kPa) | Max Load (kPa) |
---|---|---|---|
PLT1 | 280 | 140 | 2100 |
PLT2 | 280 | 140 | 1960 |
PLT3 | 280 | 140 | 2240 |
No. | Initial Load (kN) | Load Increment (kN) | Max Load (kN) |
---|---|---|---|
TP1 | 1600 | 800 | 9600 |
TP2 | 1600 | 800 | 9600 |
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Miao, Y.; Wang, X. Field Test Study on Vertical Bearing Characteristics of Coal Rock. Appl. Sci. 2022, 12, 9301. https://doi.org/10.3390/app12189301
Miao Y, Wang X. Field Test Study on Vertical Bearing Characteristics of Coal Rock. Applied Sciences. 2022; 12(18):9301. https://doi.org/10.3390/app12189301
Chicago/Turabian StyleMiao, Yun, and Xudong Wang. 2022. "Field Test Study on Vertical Bearing Characteristics of Coal Rock" Applied Sciences 12, no. 18: 9301. https://doi.org/10.3390/app12189301
APA StyleMiao, Y., & Wang, X. (2022). Field Test Study on Vertical Bearing Characteristics of Coal Rock. Applied Sciences, 12(18), 9301. https://doi.org/10.3390/app12189301