Engineering Geology

Engineering Geology

A Numerical Approach on Bearing Capacity of Drilled Shafts Embedded in Clay

Authors
Abstract
This study numerically investigates the bearing capacity of drilled shafts (bored piles) in clay using FLAC2D. The results obtained in this study are compared with centrifuge test results. The results of the empirical relationships available in the literature are compared with the results of the present numerical study. A series of analyses is also conducted to assess the effects of various soil and pile parameters on the magnitude of tip and side resistance of bored piles embedded in clay. These parameters include the soil elastic modulus, pile length and diameter, undrained shear strength, unit weight, and Poisson’s ratio of soil. Furthermore, the coupling effect of soil undrained shear strength and elastic modulus of soil on tip resistance are investigated. The results show that the lower value of soil elastic modulus results to lower effect of soil undrained shear strength. The effect of soil undrained shear strength on tip resistance is approximately constant (about 83% for a change of soil undrained shear strength between 25 to 200 kPa) for the range of elastic modulus between 20 and 180 MPa. Also, a new equation is proposed to estimate the bearing capacity factor of N*c.
Keywords

1. Vesic, Aleksandar S., "Design of pile foundations" NCHRP synthesis of highway practice, 42 (1977).## 2. O'Neil MW, Reese L. C., "Drilled shafts: Construction procedures and design methods", No. FHWA-IF-99-025 (1999). ## 3. Kulhawy, Fred H., Christina Stas Jackson, "Some observations on undrained side resistance of drilled shafts", In Foundation Engineering: Current principles and practices, (1989) 1011-1025. ASCE,. ## 4. Meyerhof G. G., "Bearing capacity and settlemtn of pile foundations", Journal of Geotechnical and Geoenvironmental Engineering 102: (1976) 197-228. ## 5. Aoki N., Velloso D. D., "An approximate method to estimate the bearing capacity of piles", InProc., 5th Pan-American Conf, of Soil Mechanics and Foundation Engineering (1975). ## 6. Philipponnat G., "Méthode pratique de calcul d'un pieu isolé, à l'aide du pénétromètre statique", Revue Francaise de Geotechnique, (10) (1980) 55-64. ## 7. Bustamante M., Frank R., "Design of axially loaded piles in France: National Report", In International Seminar Design of Axially loaded piles: European Practice, (1997) 161-175. ## 8. Bustamante M., Gianeselli L., "Pile bearing capacity prediction by means of static penetrometer CPT", In Proceedings of the 2-nd European symposium on penetration testing, (1982) 493-500. ## 9. Itasca F. L. A. C., "Fast Lagrangian analysis of continua", Itasca Consulting Group Inc., Minneapolis, Minn (2000). ## 10. Bowles L. E., "Foundation analysis and design", 5th edition. McGraw-hill (1996). ## 11. Horikoshi K., Randolph M. F., "Centrifuge modelling of piled raft foundations on clay. Geotechnique", 46(4) (1996) 741-752. ## 12. Horikoshi K., Randolph M. F., "A contribution to optimum design of piled rafts". Geotechnique, 48 (3) (1998) 301-317. ## 13. Fleming K., Weltman A., Randolph M., Elson K., "Piling engineering", 3rd edition. CRC press (2008). ## 14. Whitaker T, Cooke R. W., "An investigation of the shaft and base resistance of large bored piles in London clay", London: Institution of Civil Engineers (1966). ## 15. Reese L. C., Wright S. J., "Construction procedures and design for axial loading", Drilled Shaft Manual HDV-22 (1977). ## 16. Mayne Paul W., Kemper J. B., "Profiling OCR in stiff clays by CPT and SPT", Geotechnical testing journal 11, No. 2, (1988)139-147. ## 17. Anagnostopoulos A., Koukis G., Sabatakakis N., Tsiambaos G., "Empirical correlations of soil parameters based on cone penetration tests (CPT) for Greek soils", Geotechnical & Geological Engineering 21, No. 4, (2003) 377-387. ##