Experimental Study on Pile Load Transfer Considering Rice Stone Filled-In Gaps between Steel Drive Pipe and Pile Casing in Karst Region
Abstract
:1. Introduction
2. Project Overview
3. Experimental Scheme
3.1. Indoor Experimental Models
3.1.1. Plexiglass Tube Simplified Model
3.1.2. Similarity Model of Double Strata Batholith
3.2. Test Device
4. Analysis of Test Results
4.1. Analysis of Coarse Sand Flow into Caves
4.1.1. Analysis of Coarse Sand Inflow in a Simplified Model of a Plexiglas Tube
4.1.2. Analysis of Coarse Sand Inflow in a Similar Models for Double-Stratified Karst Pile Foundations
4.2. Plexiglas Simplified Model Settlement and Load Transfer Analysis
4.2.1. Settlement Analysis
4.2.2. Axial force Analysis of Pile Shaft
4.2.3. Distribution of Pile Side Friction and Pile Tip Resistance
4.3. Settlement and Load Transfer Analysis of Similar Models for Double-Stratified Karst Pile Foundations
4.3.1. Settlement Analysis
4.3.2. Axial Force Analysis of Pile Shaft
4.3.3. Analysis of Pile Side Friction and Pile Tip Resistance
5. Conclusions
- (1)
- A pull-out test rig was designed to simulate the casing pull-out process.
- (2)
- The quality of coarse sand inflow into the cavity was reproduced using simulated pull-out and image analysis, and the leakage amount of the casing pull-out and pile top loading was analyzed. More sand entered the cavity closer to the pile bottom during the pull-out process, while less sand entered during the loading phase, and the sand inflow was determined by gravity and pile settlement.
- (3)
- Near the upper side of the hole, the axial force of the pile increased, while there was less change near the lower side.
- (4)
- Sand filling between steel casing and steel sheath increased the pile side friction resistance, improved the bearing capacity of the pile foundation, and ensured the verticality of the pile body. Improve the porosity rate during the construction process and reduce construction costs.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Water Content ω (%) | (g/cm3) | Specific Gravity of Particles Gs | Cohesion c (kPa) | Angle of Internal Friction φ (°) | dmax (g/cm3) |
---|---|---|---|---|---|
11.45 | 1.81 | 2.64 | 24.24 | 27.92 | 1.78 |
Simulation 1 | Simulation 2 | Simulation 3 | Average Value (g) | |
---|---|---|---|---|
Cave 1 | 3.38 | 3.32 | 3.94 | 3.55 |
Cave 2 | 12.72 | 12.05 | 12.86 | 12.54 |
Cave 3 | 4.8 | 4.86 | 4.52 | 4.80 |
Cave 4 | 14.30 | 13.81 | 13.73 | 13.95 |
Simulation 1 | Simulation 2 | Simulation 3 | Average Value (g) | |
---|---|---|---|---|
Cave 1 | 8.67 | 9.66 | 9.93 | 9.42 |
Cave 2 | 18.59 | 17.56 | 16.45 | 17.53 |
Cave 3 | 6.25 | 6.95 | 7.04 | 6.75 |
Cave 4 | 16.04 | 17.19 | 18.53 | 17.25 |
Cave | Quality (g) |
---|---|
Cave 1 | 508.6 |
Cave 2 | 1118.7 |
Cave 3 | 1198 |
Cave | Quality (g) |
---|---|
Cave 1 | 665.4 |
Cave 2 | 1191.3 |
Cave 3 | 1245.5 |
Pile Top Load Q (kN) | Pile Side Friction QS (kN) | QS/Q |
---|---|---|
10 | 9.76 | 0.98 |
15 | 13.13 | 0.88 |
20 | 15.29 | 0.76 |
25 | 18.36 | 0.73 |
30 | 21.64 | 0.72 |
35 | 25.26 | 0.72 |
40 | 28.98 | 0.72 |
45 | 32.48 | 0.72 |
50 | 34.88 | 0.70 |
Pile Top Load Q (kN) | Pile Side Friction QS (kN) | QS/Q |
---|---|---|
10 | 9.11 | 0.91 |
12.5 | 10.76 | 0.86 |
15 | 11.67 | 0.78 |
17.5 | 12.82 | 0.73 |
20 | 14.38 | 0.72 |
22.5 | 15.59 | 0.69 |
25 | 16.75 | 0.67 |
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Zhu, F.; Yang, Z.; Liu, Q.; Zhao, Y.; Wu, B.; Zhang, S.; Chen, Q.; Chen, Y.; Luo, R. Experimental Study on Pile Load Transfer Considering Rice Stone Filled-In Gaps between Steel Drive Pipe and Pile Casing in Karst Region. Sustainability 2023, 15, 14659. https://doi.org/10.3390/su152014659
Zhu F, Yang Z, Liu Q, Zhao Y, Wu B, Zhang S, Chen Q, Chen Y, Luo R. Experimental Study on Pile Load Transfer Considering Rice Stone Filled-In Gaps between Steel Drive Pipe and Pile Casing in Karst Region. Sustainability. 2023; 15(20):14659. https://doi.org/10.3390/su152014659
Chicago/Turabian StyleZhu, Fangcai, Zhijia Yang, Qing Liu, Yanlin Zhao, Binbin Wu, Shaolong Zhang, Qi Chen, Yifan Chen, and Rui Luo. 2023. "Experimental Study on Pile Load Transfer Considering Rice Stone Filled-In Gaps between Steel Drive Pipe and Pile Casing in Karst Region" Sustainability 15, no. 20: 14659. https://doi.org/10.3390/su152014659
APA StyleZhu, F., Yang, Z., Liu, Q., Zhao, Y., Wu, B., Zhang, S., Chen, Q., Chen, Y., & Luo, R. (2023). Experimental Study on Pile Load Transfer Considering Rice Stone Filled-In Gaps between Steel Drive Pipe and Pile Casing in Karst Region. Sustainability, 15(20), 14659. https://doi.org/10.3390/su152014659