A Model Test for the Influence of Lateral Pressure on Vertical Bearing Characteristics in Pile Jacking Process Based on Optical Sensors
Abstract
:1. Introduction
2. Test Plan
2.1. Model Pile
2.2. Model Bucket and Loading Device
2.3. Sensor and Package
2.3.1. Basic Principle of Sensor
2.3.2. Installation of Sensors
2.4. Model Foundation
- (1)
- First, apply sealant to the weld in the model barrel to prevent water from overflowing from the weld.
- (2)
- Make the model foundation in 10 layers with a 10 cm thickness for each layer, and calculate the mass of dry soil and water required for each layer of the foundation based on the dry density of the soil, the volume of the model bucket, and the moisture content of the model foundation.
- (3)
- Evenly spread the weighed dry soil into the model bucket using the pasted scale, and use the indoor light tamper to pack the soil the design height with a smooth surface. Spray the weighed water evenly into the soil with the sprinkling kettle. After sprinkling, seal the mouth of the bucket with a plastic sheet and let it stand for 24 hours to allow the water to fully soak into the soil.
- (4)
- Repeat the above steps until the foundation of the model is complete. Seal the model barrel mouth with a plastic sheet for 7 days to ensure all the soil layers are uniform. The process to make the model foundation is shown in Figure 7.
2.5. Test Process
- (1)
- Before the test, make marks every 5 cm on the model pile, and number the miniature earth and pore water pressure sensors from the bottom to the top to record the test data.
- (2)
- Bring the equipment required for the test to the structural laboratory, paste the pressure sensor to the center of the end face of the hydraulic jack using structural adhesive, and connect the data display.
- (3)
- Connect the low-temperature sensitive, miniature, FBG, strain sensor to the fiber Bragg demodulator through the fiber extension cord, which is connected to the computer through the data cable. Connect the connector of the miniature earth and pore water pressure sensors to the data acquisition card and external switching power supply, which is connected to another computer.
- (4)
- Connect the hydraulic jack to the oil pump with the oil pipe, place the model pile at the center of the model foundation, and adjust the position of the jack so that its center and the center of the model pile are on the same line.
- (5)
- Adjust the time of the two computers in advance and set the relevant parameters of the testing software to ensure synchronized data collection from the two sensors. Start pressurizing with the oil pump and turn on the data acquisition software to start recording data. Record the pile force from the data display every 5 cm of pressing. When the jack is full, add a pad to continue driving the pile until the end of the test. The entire test device is shown in Figure 8.
3. Test Results and Analysis
3.1. Variation Law of Pile Pressure with Penetration Depth
3.2. Distribution of Pore Water Pressure
3.3. Lateral Pressure Distribution
3.4. Distribution of Lateral Friction Resistance
3.5. Axial Force Distribution Law for Pile Body
4. Conclusions
- (1)
- A low-temperature sensitive miniature FBG strain sensor can monitor stress changes of a pile in real time, which is easily installed and has a stable performance. The miniature earth and pore water pressure sensors are small and suitable for dynamic measurements. For the first time, a micro FBG strain sensor, micro earth pressure sensor, and micro pore water pressure sensor were installed in the grooves of a model pile (nylon rod) to mechanically test the pile and verify its feasibility.
- (2)
- In this test, silty clay retrieved from the site was successfully dried and ground to make the model foundation; thus, the soil sample preparation method is feasible.
- (3)
- In the clay soil, the change law for the interfacial force at the pile–soil interface is as follows. During the pile jacking process, the earth pressure on the pile side increased gradually with depth and began to change rapidly. As the depth increased, the earth pressure gradually slowed. The lateral pressure at the same depth tended to decrease at greater pile depths. The distribution law for the effective lateral pressure was nearly consistent with that of the lateral pressure. Under the test, the excess pore water pressure during pile jacking was small and accounted for about 1%–3% of the total lateral pressure. Moreover, the pore water pressure was maximized when the pile penetration depth was half the effective pile length.
- (4)
- Under the influence of the lateral pressure, the measured pile axial force increased compared with the traditional calculated value at approximately 1–2 times the effective lateral pressure at the same depth, where the maximum was a factor of 2.7. Therefore, the influence of lateral pressure should be considered when studying problems such as the pile residual stress.
- (5)
- The foundation soil of this experiment is homogeneous viscous soil. The variation rules of lateral pressure and vertical axial force in other soil layers and the relationship between them need to be further studied.
Author Contributions
Acknowledgments
Conflicts of Interest
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Density (g/cm3) | Moisture Content (%) | Dry Density (g/cm3) | Void Ratio | Saturability (%) | Liquid Limit (%) | Plastic Limit (%) | internal Friction Angle (°) | Cohesion (kPa) | Coefficient of Compressibility αv1-2 (MPa−1) | Modulus of Compression ES1-2 (MPa) | Poisson’s Ratio |
---|---|---|---|---|---|---|---|---|---|---|---|
1.98 | 25.3 | 1.58 | 0.728 | 94.9 | 31.3 | 16.5 | 30 | 27 | 0.32 | 5.5 | 0.3 |
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Wang, Y.; Liu, X.; Sang, S.; Zhang, M.; Wang, P. A Model Test for the Influence of Lateral Pressure on Vertical Bearing Characteristics in Pile Jacking Process Based on Optical Sensors. Sensors 2020, 20, 1733. https://doi.org/10.3390/s20061733
Wang Y, Liu X, Sang S, Zhang M, Wang P. A Model Test for the Influence of Lateral Pressure on Vertical Bearing Characteristics in Pile Jacking Process Based on Optical Sensors. Sensors. 2020; 20(6):1733. https://doi.org/10.3390/s20061733
Chicago/Turabian StyleWang, Yonghong, Xueying Liu, Songkui Sang, Mingyi Zhang, and Peng Wang. 2020. "A Model Test for the Influence of Lateral Pressure on Vertical Bearing Characteristics in Pile Jacking Process Based on Optical Sensors" Sensors 20, no. 6: 1733. https://doi.org/10.3390/s20061733
APA StyleWang, Y., Liu, X., Sang, S., Zhang, M., & Wang, P. (2020). A Model Test for the Influence of Lateral Pressure on Vertical Bearing Characteristics in Pile Jacking Process Based on Optical Sensors. Sensors, 20(6), 1733. https://doi.org/10.3390/s20061733