Optimizing axial bearing capacity estimation of pre-bored grouted planted nodular (PGPN) pile: Enriched dataset and genetic algorithm approach
- Authors: Tan Nguyen 1*, Tuetakoun Aphistih 1, Minh The Quang Nguyen 1, Duy Khuong Ly 2,3, Jim Shiau 4
Affiliations:
1 Ton Duc Thang University (Faculty of Civil Engineering), Hochiminh, Vietnam
2 Van Lang University (Laboratory for Computational Mechanics - Institute for Computational Science and Artificial Intelligence), Hochiminh, Vietnam
3 Van Lang University (Faculty of Civil Engineering - School of Technology), Hochiminh, Vietnam
4 University of Southern Queensland (School of Engineering), Toowoomba, Australia
- *Corresponding:This email address is being protected from spambots. You need JavaScript enabled to view it.
- Keywords: Axial bearing capacity, Empirical Formula, Genetic algorithm optimiza-tion, Static Pile Load Test.
- Received: 23rd-July-2024
- Revised: 29th-Oct-2024
- Accepted: 10th-Nov-2024
- Online: 1st-Dec-2024
- Section: Civil Engineering
Abstract:
This study introduces a practical and efficient methodology to improve the estimation of the ultimate axial bearing capacity of Pre-bored Grouted Planted Nodular (PGPN) piles, addressing a critical need in geotechnical engineering. By enhancing the dataset with 98 additional case histories and pile load test data from various projects across Vietnam, we have developed a more reliable predictive tool for engineers. The use of genetic algorithms has refined existing empirical formulas, significantly improving their accuracy while remaining simple enough for hand calculations. The proposed formula achieves a correlation coefficient of 0.907, a 7.2% improvement over previous methods. This research offers a valuable solution for the challenges faced in predicting the load-bearing capacity of PGPN piles, providing a more dependable method that can streamline design and construction practices.
Abu-Farsakh, M. Y., Yu, X., Yoon, S., and Tsai, C. (2010). Calibration of resistance factors needed in the LRFD design of drilled shafts (No. FHWA/LA. 10/470). Louisiana Transportation Research Center.
Chin, F. K. (1970). Estimation of the ultimate load of piles from tests not carried to failure. In Proc. 2nd Southeast Asian Conference on Soil Engineering, Singapore, 1970.
Fang, P., Xie, X., and Qi, J. (2014). Engineering character of a new-style pretensioned spun concrete nodular pile. In Advances in Soil Dynamics and Foundation Engineering (pp. 404-413).
Homma, Y. (2014). Introduction of base enlarged pre-boring method with nodular pile. In The 1st workshop on new pile foundation technologies in Vietnam, Ho Chi Minh University of Technology, Vietnam National University-Ho Chi Minh city.
Horiguchi, T., and Karkee, M. B. (1995). Load Tests on Bored Phc Nodular Piles in Different Ground Conditions and the Bearing Capacity Based on Simple Soil Parameters. AIJ Journal of Technology and Design, 1(1). 89-94. doi:10.3130/aijt. 1.89.
Huynh, V. H., Nguyen, T., Nguyen, D. P., Nguyen, T. S. and Nguyen, T. C., (2022). A novel direct SPT method to accurately estimate ultimate axial bearing capacity of bored PHC nodular piles with 81 case studies in Vietnam. Soils and Foundations, 62(4). p.101163. doi.org/10.1016/j.sandf.2022. 101163
Karkee, M.B., Kanai, S. and Horiguchi, T. (1998). Quality assurance in bored PHC nodular piles through control of design capacity based on loading test data. In Proceedings of the 7th International Conference and Exhibition, Piling and Deep Foundations (Vol. 1, No. 24, pp. 1-9).
Kobayashi, K. and Ogura, H. (2007). Vertical bearing capacity of bored pre-cast pile with enlarged base considering diameter of the enlarged excavation around pile toe. In Advances in Deep Foundations (pp. 289-296). CRC Press.
Lambora, A., Gupta, K. and Chopra, K. (2019). Genetic algorithm-A literature review. In 2019 international conference on machine learning, big data, cloud and parallel computing (COMITCon). (pp. 380-384). IEEE.
Meyerhof, G. G. (1976). Bearing capacity and settlement of pile foundations. Journal of the Geotechnical Engineering Division, 102(3). 197-228.
Nguyen, T., Ly, K.-D., Nguyen-Thoi, T., Nguyen, B.-P. and Doan, N.-P. (2022). Prediction of axial load bearing capacity of PHC nodular pile using Bayesian regularization artificial neural network. Soils and Foundations, 62(5). 101203.doi:10.1016/j.sandf.2022.101203.
Shioi, Y. and Fukui, J. (2021). Application of N-value to design of foundations in Japan. In Penetration Testing, volume 1 (pp. 159-164). Routledge.
TCVN 10304:2014. Pile foundation - Design Standard. Vietnam national standard.
TCVN 205:1998. Pile foundation - Specifications for design. Vietnam national standard.
Wang, Z. J., Zhang, R. H., Xie, X. Y., Fang, P. F., Zheng, L. W., Li, J. Z., and Zhu, D. Y. (2019). Field tests and simplified calculation method for static drill rooted nodular pile. Advances in Civil Engineering, 2019(1), 1-13. doi:10.1155/ 2019/5841840.
Yoshimi, Y. and Tokimatsu, K. (1983). SPT Practice Survey and Comparative Tests. Soils and Foundations, 23(3). 105-111. doi:10.3208/sandf1972.23.3_105.
Yu, J. L., Zhou, J. J., Gong, X. N., and Zhang, R. H. (2021). Shaft capacity of prestressed high strength concrete (PHC) pile-cemented soil column embedded in clayey soil. Soils and Foundations, 61(4), 1086-1098. doi:10.1016/j.sandf.2021.05.006.
Zhou, J. J., Yu, J. L., Gong, X. N., El Naggar, M. H., and Zhang, R. H. (2021). Field study on the behavior of pre-bored grouted planted pile with enlarged grout base. Acta Geotechnica, 16, 3327-3338. doi.org/10. 1007/s11440-021-01208-7.
Zhou, J., Yu, J., Gong, X., El Naggar, M.H., and Zhang, R. (2020). The effect of cemented soil strength on the frictional capacity of precast concrete pile-cemented soil interface. Acta Geotechnica, 15(11). 3271-3282. doi:10.1007/s11440-020-00915-x
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