Laboratory Test Study on Pile Jacking Penetration Mechanism Considering Different Diameter and Length Based on Photoelectric Integration Technology
Abstract
:1. Introduction
2. Test Preparation
2.1. Test System
2.2. Test Soil Samples
2.3. Introduction of Model Pile
3. Introduction of Model Sensor
3.1. Sensitized Microfiber Sensing
3.2. FBG Fiber-Optic Sensing Principle
3.3. Deployment of Fiber-Optic Grating Sensors
- (1)
- Measuring and positioning: Using a black water-based pen, mark the pre-installation site of the FBG sensor on piles at the spacing indicated in Figure 4. Number the sensors from the bottom to the top of the pile as 1#–6#.
- (2)
- Slotting: A shallow slot of 2 mm × 2 mm (width × depth) is cut into the surface of the outer tube.
- (3)
- Adhesive sensor: first, paste one end of the fiber grating, clamp both ends of the fiber grating with cotton swabs, then move the unbonded end for pre-stretching; when the wavelength increases around 2 nm, stop pre-stretching, and fix the free end with glue, as shown in Figure 5.
- (4)
- Connect the collector and check the survival rate: After cleaning the sensor’s FC connector, connect the collector to the demodulator to check the survival rate. From the results, all of the sensors are alive.
- (5)
- Package protection: the FBG sensor is encapsulated with epoxy resin to flush its surface with the pile surface.
3.4. Wheel and Spoke Pressure Sensor
3.5. Brief Introduction of Pile Top Pressure Sensor
3.6. Principle of Pile Top Pressure Sensor
3.7. Installation Guarantee of Test Sensor
4. Static Pile-Sinking Test
4.1. Experiment Overview
4.2. Selection of Pile Position
4.3. Loading and Measurement of the Test
5. Analysis of Static Pile-Sinking Test Results
5.1. Analysis of Force Traits during Pile Sinking
5.2. Analysis of Piling Force during Pile Sinking
5.3. Analysis of Pile End Resistance during Pile Sinking
5.4. Analysis of Pile Side Friction Resistance during Pile Sinking
5.5. Analysis of Test Pile Axial Force Results
5.6. Analysis of the Results of the Unit Frictional Resistance of the Test Pile Side of the Pile
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Relative Density ds | Weight Density γ/(kN/m3) | Moisture Content w/% | Liquid Limit wL/% | Plastic Limit wp/% | Plasticity Index Ip/% | Cohesion c/kPa | Internal Friction Angle φ/(°) | Modulus of Compression Es1-2/MPa |
---|---|---|---|---|---|---|---|---|
2.73 | 18.0 | 34.8 | 34.8 | 21.2 | 13.6 | 14.4 | 8.6 | 3.3 |
No. | External Diameter/mm | Pile Length/mm | Pipe Thickness/mm | Form of Pipe End | Elasticity Modulus/GPa | Poisson’s Ratio |
---|---|---|---|---|---|---|
TP1 | 140 | 1200 | 3 | close | 72 | 0.3 |
TP2 | 140 | 1000 | 3 | close | 72 | 0.3 |
TP3 | 100 | 1000 | 3 | close | 72 | 0.3 |
Parameter Type | Wavelength Interval/nm | Central Wavelength/nm | Range/με | Resolution Ratio/με | Usage Temperature/(°C) |
---|---|---|---|---|---|
numerical value | ±3 | 1510~1590 | ±1500 | 1 | −30~120 |
No. | Total Pile Length/mm | Pile Diameter/mm | Form of Pile End | Pile Depth /mm | Pile Driving Speed/(mm/min) | FBG Sensor/Number | Pile Top Pressure Sensor/Number | Pile End Spoke Pressure Transducer/Number |
---|---|---|---|---|---|---|---|---|
TP1 | 1200 | 140 | close | 1100 | 300 | 6 | 1 | 1 |
TP2 | 1000 | 140 | close | 900 | 300 | 6 | 1 | none |
TP3 | 1000 | 100 | close | 900 | 300 | 6 | 1 | none |
No. | Jacking Force/kN | Tip Resistance/kN | Percentage/% | Side Friction/kN | Percentage/% |
---|---|---|---|---|---|
TP1 | 3.298 | 2.054 | 62.3 | 1.244 | 37.7 |
TP2 | 2.938 | 1.747 | 59.5 | 1.191 | 40.5 |
TP3 | 2.238 | 1.480 | 66.2 | 0.757 | 33.8 |
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Wang, L.; Zhang, S.; Li, S.; Wang, J.; Niu, X.; Wang, D.; Wang, Y. Laboratory Test Study on Pile Jacking Penetration Mechanism Considering Different Diameter and Length Based on Photoelectric Integration Technology. Buildings 2023, 13, 1247. https://doi.org/10.3390/buildings13051247
Wang L, Zhang S, Li S, Wang J, Niu X, Wang D, Wang Y. Laboratory Test Study on Pile Jacking Penetration Mechanism Considering Different Diameter and Length Based on Photoelectric Integration Technology. Buildings. 2023; 13(5):1247. https://doi.org/10.3390/buildings13051247
Chicago/Turabian StyleWang, Lifeng, Shuo Zhang, Shiqiang Li, Jun Wang, Xunlong Niu, Donglei Wang, and Yonghong Wang. 2023. "Laboratory Test Study on Pile Jacking Penetration Mechanism Considering Different Diameter and Length Based on Photoelectric Integration Technology" Buildings 13, no. 5: 1247. https://doi.org/10.3390/buildings13051247
APA StyleWang, L., Zhang, S., Li, S., Wang, J., Niu, X., Wang, D., & Wang, Y. (2023). Laboratory Test Study on Pile Jacking Penetration Mechanism Considering Different Diameter and Length Based on Photoelectric Integration Technology. Buildings, 13(5), 1247. https://doi.org/10.3390/buildings13051247