Analysis of the Installation Effect on the Axial Performance of Pressure-Grouted Helical Piles in Clay by Small-Scale Model Tests
Abstract
:1. Introduction
2. Experimental Program
2.1. Model Piles Preparation and Test Plans
2.2. Soil Bed Preparation
2.3. Model Pile Installation
2.4. Loading Tests
3. Results and Discussion
3.1. Shape of the Soil-Cement Column
3.2. Results of Load–Displacement Curves
3.2.1. Failure Criterias
3.2.2. Ultimate Compressive Capacity
3.2.3. Ultimate Uplift Capacity
3.3. Load Transfer Meshanism
3.3.1. Axial Force Estimation
3.3.2. Normalized Unit Skin Resistance
3.3.3. Tip and Skin Resistance
4. Conclusions
- (1)
- The clay used in the test is mainly composed of quartz and kaolinite. The silica and alumina contained in the minerals improve the stability and strength of the soil-cement.
- (2)
- The simultaneous drilling and grouting technique could successfully construct the pressure-grouted helical piles in soft clay. The soil-cement column bond diameter decreased with the depth of clay due to the increase of the confining pressure and the undrained shear strength of clay. The average bond diameter of the soil-cement column was 21.4% to 26% larger than the helix size, depending on the depths.
- (3)
- The increase in the helix number could positively affect the integrity and continuity of the soil-cement column. With only one helix plate at the front of the helical pile, the cement slurry could not be sufficiently mixed with the clay at the upper part of the model pile to form a strong and large soil-cement column. With more helix plates installed along with the model piles, the bond diameter of the soil-cement column could be larger and more uniform.
- (4)
- The increase of the helix size could significantly increase the bond diameter of the soil-cement column. The larger helix plate could disturb more area of the clay to decrease its strength and lower the confining pressure, making the cement slurry penetrate into the clay easier.
- (5)
- The increase of the drilling speed could decrease the quality of the formation of the soil-cement column. The faster drilling may lead to insufficient grouting and reduce the ratio of the cement in the soil-cement material, which decreases the stiffness and strength of the soil-cement material.
- (6)
- Compared to the un-grouted helical piles, the ultimate compression capacities of the pressure-grouted helical piles increased from 260% to 293%. The ultimate compressive capacities of the pressure-grouted helical piles increased with the helix number and size and decreased with the drilling speed. The ultimate compressive capacities were reasonably estimated by Butler and Hoy [34].
- (7)
- The axial load transfer curves indicated that the maximum adhesion was in the range of 1.0 to 1.2. The reasons of the maximum adhesion larger than 1.0 were that no gap was formed between the soil-cement column and the clay, and the cement slurry strengthened the clay.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Variable | No. | Helix Number n | Helix Size DH (mm) | Drilling Speed v (mm/min) | Loading Way |
---|---|---|---|---|---|
Helix Number | HP-HN-4 | 4 | 66 | 250 | Compressive |
PGHP-HN-2 | 2 | 200 | |||
PGHP-HN-3 | 3 | 250 | |||
PGHP-HN-4 | 4 | 250 | |||
PGHP-HN-4 | 4 | 250 | Uplift | ||
Helix Size | HP-HS-66 | 4 | 66 | 250 | Compressive |
PGHP-HS-44 | 44 | ||||
PGHP-HS-66 | 66 | ||||
PGHP-HS-88 | 88 | ||||
PGHP-HS-66 | 66 | Uplift | |||
Drilling Speed | HP-DS-250 | 4 | 66 | 250 | Compressive |
PGHP-DS-200 | 200 | ||||
PGHP-DS-250 | 250 | ||||
PGHP-DS-300 | 300 |
SiO2 | Al2O3 | Fe2O3 | MgO | CaO | Na2O | K2O | TiO2 | MnO | P2O5 | SO3 | Loss on Ignition |
---|---|---|---|---|---|---|---|---|---|---|---|
70.158 | 18.994 | 0.375 | 0.198 | 0.244 | 0.899 | 2.4 | 0.041 | 0.037 | 0.037 | 0.066 | 6.52 |
Water Content (%) | Liquid Limit | Plastic Limit | Saturated Unit Weight (KN/m3) | |
---|---|---|---|---|
55~60 | 2.8 | 77 | 36 | 17.2 |
No. | Ultimate Bearing Capactiy Pult (N) | Dsiplacement (mm) |
---|---|---|
HP-HN-4 | 141 | 1.03 |
PGHP-HN-2 | 469 | 4.03 |
PGHP-HN-3 | 513 | 6.27 |
PGHP-HN-4 | 540 | 3.38 |
PGHP-HN-4 (U) | 526 | 0.91 |
HP-HS-66 | 136 | 0.94 |
PGHP-HS-44 | 269 | 1.69 |
PGHP-HS-66 | 490 | 3.01 |
PGHP-HS-88 | 675 | 7.38 |
PGHP-HS-66 (U) | / | / |
HP-DS-250 | 105 | 0.70 |
PGHP-DS-200 | 438 | 3.76 |
PGHP-DS-250 | 413 | 4.84 |
PGHP-DS-300 | 380 | 4.03 |
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Zhuang, X.; Zong, Z.; Huang, Y.; Wang, P. Analysis of the Installation Effect on the Axial Performance of Pressure-Grouted Helical Piles in Clay by Small-Scale Model Tests. Buildings 2022, 12, 992. https://doi.org/10.3390/buildings12070992
Zhuang X, Zong Z, Huang Y, Wang P. Analysis of the Installation Effect on the Axial Performance of Pressure-Grouted Helical Piles in Clay by Small-Scale Model Tests. Buildings. 2022; 12(7):992. https://doi.org/10.3390/buildings12070992
Chicago/Turabian StyleZhuang, Xiaoxuan, Zhongling Zong, Yunhan Huang, and Peipei Wang. 2022. "Analysis of the Installation Effect on the Axial Performance of Pressure-Grouted Helical Piles in Clay by Small-Scale Model Tests" Buildings 12, no. 7: 992. https://doi.org/10.3390/buildings12070992
APA StyleZhuang, X., Zong, Z., Huang, Y., & Wang, P. (2022). Analysis of the Installation Effect on the Axial Performance of Pressure-Grouted Helical Piles in Clay by Small-Scale Model Tests. Buildings, 12(7), 992. https://doi.org/10.3390/buildings12070992