DOI QR코드

DOI QR Code

Performance of laterally loaded piles considering soil and interface parameters

  • Fatahi, Behzad (School of Civil and Environmental Engineering, University of Technology Sydney (UTS)) ;
  • Basack, Sudip (School of Civil, Mining and Environmental Engineering, University of Wollongong) ;
  • Ryan, Patrick (School of Civil and Environmental Engineering, University of Technology Sydney (UTS)) ;
  • Zhou, Wan-Huan (Department of Civil and Environmental Engineering, University of Macau) ;
  • Khabbaz, Hadi (School of Civil and Environmental Engineering, University of Technology Sydney (UTS))
  • Received : 2014.03.24
  • Accepted : 2014.07.11
  • Published : 2014.11.25

Abstract

To investigate the soil-pile interactive performance under lateral loads, a set of laboratory model tests was conducted on remoulded test bed of soft clay and medium dense sand. Then, a simplified boundary element analysis had been carried out assuming floating pile. In case of soft clay, it has been observed that lateral loads on piles can initiate the formation of a gap, soil heave and the tension crack in the vicinity of the soil surface and the interface, whereas in medium dense sand, a semi-elliptical depression zone can develop. Comparison of test and boundary element results indicates the accuracy of the solution developed. However, in the boundary element analysis, the possible shear stresses likely to be developed at the interface are ignored in order to simplify the existing complex equations. Moreover, it is unable to capture the influence of base restraint in case of a socketed pile. To bridge up this gap and to study the influence of the initial stress state and interface parameters, a field based case-study of laterally-loaded pile in layered soil with socketed tip is explored and modelled using the finite element method. The results of the model have been verified against known field measurements from a case-study. Parametric studies have been conducted to investigate the influence of the coefficient of lateral earth pressure and the interface strength reduction factor on the results of the model.

Keywords

References

  1. Ahmadi, M.M. and Ahmari, S. (2009), "Finite-element modelling of laterally loaded piles in clay", Proceedings of the ICE - Geotechnical Engineering, 162(3), 151-163. https://doi.org/10.1680/geng.2009.162.3.151
  2. Al-Douri, R. and Poulos, H.G. (1995), "Predicted and observed cyclic performance of piles in calcereous sand", J. Geotech. Eng., 121(1), 1-16. https://doi.org/10.1061/(ASCE)0733-9410(1995)121:1(1)
  3. Al-Mhaidib, A.I. (2006a), "Influence of loading rate on axial capacity of pile groups in clay from laboratory model tests", Proceedings of the 10th Arab Structural Engineering Conference, Kuwait, November, pp. 611-620.
  4. Al-Mhaidib, A.I. (2006b), "Influence of shearing rate on interfacial friction between sand and steel", Eng. J., University of Qatar, 19, 1-16.
  5. Al-Mhaidib, A.I. (2007), "Efficiency of pile groups in clay under different loading rates", Proceedings of the 17th International Offshore and Polar Engineering Conference, Lisbon, Portugal, July, pp. 1458-1463.
  6. Allotey, N. and El Naggar, M.H. (2008), "A numerical study into lateral cyclic nonlinear soil-pile response", Can. Geotech. J., 45(9), 1268-1281. https://doi.org/10.1139/T08-050
  7. Ashour, M. and Norris, G. (2003), "Lateral loaded pile response in liquefiable soil", J. Geotech. Geoenviron. Eng., 129(5), 404-414. https://doi.org/10.1061/(ASCE)1090-0241(2003)129:6(404)
  8. Basack, S. (2009), "A technical note on development and performance study of a set-up for imparting lateral cyclic load on piles", Mar. Georesour. Geotech., 27(4), 322-341. https://doi.org/10.1080/10641190903143272
  9. Basack, S. (2010), "Response of vertical pile group subjected to horizontal cyclic load in soft clay", Latin Am. J. Solid. Struct., 7(2), 91-103. https://doi.org/10.1590/S1679-78252010000200001
  10. Basack, S. and Dey, S. (2012), "Influence of relative pile-soil stiffness and load eccentricity on single pile response in sand under lateral cyclic loading", Geotech. Geol. Eng., Int. J., 30(4), 737-751. https://doi.org/10.1007/s10706-011-9490-1
  11. Basack, S. and Sen, S. (2014), "Numerical solution of single piles subjected to pure torsion", J. Geotech. Geoenviron. Eng., ASCE, 140(1), 74-90. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000964
  12. Broms, B.B. (1964a), "The lateral resistance of piles in cohesive soils", J. Soil Mech. Found. Div., ASCE, 90(SM3), 27-63.
  13. Broms, B.B. (1964b), "The lateral resistance of piles in cohesionless soils", J. Soil Mech. Found. Div., ASCE, 90(SM2), 123-156.
  14. Brown, D.A. and Shie, C.-F. (1991), "Some numerical experiments with a three dimensional finite element model of a laterally loaded pile", Comput. Geotech. , 12(1), 149-162. https://doi.org/10.1016/0266-352X(91)90004-Y
  15. Chan, C.L. and Low, B.K. (2009), "Reliability analysis of laterally loaded piles involving nonlinear soil and pile behavior", J. Geotech. Geoenviron. Eng., ASCE, 135(3), 431-443. https://doi.org/10.1061/(ASCE)1090-0241(2009)135:3(431)
  16. Chandrasekaran, S., Boominathan, A. and Dodagoudar, G.R. (2010), "Group interaction effects on laterally loaded piles in clay", J. Geotech. Geoenv. Eng., 136(4), 573-582. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000245
  17. Chore, H.S., Ingle, R.K. and Sawant, V.A. (2012), "Parametric study of laterally loaded pile groups using simplified F.E. models", Coupled Syst. Mech., Int. J., 1(1), 1-7. https://doi.org/10.12989/csm.2012.1.1.001
  18. Dodds, A.M. and Martin, G.R. (2007), "Modelling pile behaviour in large pile groups under lateral loading", Technical Report MCEER-07-0004, MCEER University at Buffalo, Buffalo, NY, USA.
  19. Douglas, D.J. and Davis, E.H. (1964), "Movement of buried footing due to moment and horizontal load and movement of anchor plates", Geotechnique, 14(2), 115-132. https://doi.org/10.1680/geot.1964.14.2.115
  20. Duncan, J., Robinette, M. and Mokwa, R. (2005), "Analysis of laterally loaded pile groups with partial pile head fixity", In: Advances in Deep Foundation; Proceedings of Geo-Frontiers Congress 2005, Austin, TX, USA, January, pp. 1-16.
  21. Dyson, G.J. (1999), "Lateral loading of piles in calcareous sediments", Ph.D. Thesis, Department of Civil and Resource Engineering, University of Western Australia, Perth, Australia.
  22. Fan, C. and Long, J.H. (2005), "Assessment of existing methods for predicting soil response of laterally loaded piles in sand", Comput. Geotech., 32(4), 274-289. https://doi.org/10.1016/j.compgeo.2005.02.004
  23. Fatahi, B., Khabbaz, H. and Fatahi, B. (2012), "Mechanical characteristics of soft clay treated with fibre and cement", Geosynth. Int., 19(3), 252-262. https://doi.org/10.1680/gein.12.00012
  24. Fatahi, B., Le, T., Le, M. and Khabbaz, H. (2013a), "Soil creep effects on ground lateral deformation and pore water pressure under embankments", Geomech. Geoeng.: Int. J., 8(2), 107-124. https://doi.org/10.1080/17486025.2012.727037
  25. Fatahi, B., Fatahi, B., Le, T. and Khabbaz, H. (2013b), "Small-strain properties of soft clay treated with fibre and cement", Geosynth. Int., 20(4), 286-300. https://doi.org/10.1680/gein.13.00018
  26. Hajialilue-Bonab, M., Sojoudi, Y. and Puppala, A.J. (2011), "Soil deformation pattern around laterally loaded piles", Int. J. Phys. Model. Geotech., 11(3), 116-125.
  27. Hajialilue-Bonab, M., Sojoudi, Y. and Puppala, A.J. (2013), "Study of strain wedge parameters for laterally loaded piles", Int. J. Geomech., 13(2), 143-152. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000186
  28. Higgins, W., Vasquez, C., Basu, D. and Griffiths, D.V. (2013), "Elastic solutions for laterally loaded piles", J. Geotech. Geoenviron. Eng., 139(7), 1096-1103. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000828
  29. Hokmabadi, A.S., Fakher, A. and Fatahi, B. (2012), "Full scale lateral behaviour of monopiles in granular marine soils", Mar. Struct., 29(1), 198-210. https://doi.org/10.1016/j.marstruc.2012.06.001
  30. Hokmabadi, A.S., Fatahi, B. and Samali, B. (2014a), "Assessment of soil-pile-structure interaction influencing seismic response of mid-rise buildings sitting on floating pile foundations", Comput. Geotech., 55(1), 172-186. https://doi.org/10.1016/j.compgeo.2013.08.011
  31. Hokmabadi, A.S., Fatahi, B. and Samali, B. (2014b), "Seismic response of mid-rise buildings on shallow and end-bearing pile foundations in soft soil", Soil. Found., 54(3), 345-363. https://doi.org/10.1016/j.sandf.2014.04.020
  32. Jamiolkowski, M. and Garassino, A. (1977), "Soil modulus for laterally loaded piles", Proceedings of the 9th International Conference on Soil Mechanics Foundation Engineering, Tokyo, Japan, July, pp. 43-58.
  33. Kim, Y. and Jeong, S. (2011), "Analysis of soil resistance on laterally loaded piles based in 3D soil-pile interaction", Comput. Geotech., 38, 248-257. https://doi.org/10.1016/j.compgeo.2010.12.001
  34. Kim, Y., Jeong, S. and Lee, S. (2011), "Wedge failure analysis of soil resistance on laterally loaded piles in clay", J. Geotech. Geoenviron. Eng., 137, 678-694. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000481
  35. Kim, Y., Jeong, S. and Won, J. (2009), "Effect of lateral rigidity of offshore piles using proposed p-y curves in marine clay", Mar. Georesour. Geotech., 27, 53-77. https://doi.org/10.1080/10641190802625551
  36. Le, T., Fatahi, B. and Khabbaz, H. (2012), "Viscous behaviour of soft clay and inducing factors", Geotech. Geol. Eng.: Int. J., 30(5), 1069-1083. https://doi.org/10.1007/s10706-012-9535-0
  37. Lebeau, J.S. (2008), "FE-analysis of piled and piled raft foundations", Technical Report: Institute for Soil Mechanics and Foundation Engineering, Graz University of Technology, Austria.
  38. Lee, Y.N. and Jin, B.J. (1979), "Measurement and prediction of $K_0$", J. Korean Soc. Civil Eng., 27(2), 57-66.
  39. Levy, N.H., Einav, I. and Randolph, M.F. (2007), "Effect of recent load history on laterally loaded piles in normally consolidated clay", Int. J. Geomech., 7(4), 277-286. https://doi.org/10.1061/(ASCE)1532-3641(2007)7:4(277)
  40. Li, Z., Haigh, S.K. and Bolton, M.D. (2010), "The response of pile groups under cyclic lateral loads", Int. J. Phys. Model. Geotech., 10(2), 47-57. https://doi.org/10.1680/ijpmg.2010.10.2.47
  41. Massarsch, K.R. (1979), "Lateral earth pressure in normally consolidated clay", The 7th European Conference on Soil Mechanics and Foundation Engineering, Volume 2, Brighton, England, September, pp. 245-249.
  42. Matlock, H. (1970), "Correlations for design of laterally loaded piles in soft clay", Proceedings of the Second Annual Offshore Technology Conference, Houston, TX, USA, April, pp. 577-594.
  43. Meyerhof, G.G. (1959), "Compaction of sands and bearing capacity of cohesionless soils", J. Soil Mech. Found. Div., 85(SM6), 1-29.
  44. Meyerhof, G.G. and Adams, J.L. (1968), "The ultimate uplift capacity of foundations", Can. Geotech. J., 5(4), 225-244. https://doi.org/10.1139/t68-024
  45. Mindlin, R.D. (1936), "Force at a point in the interior of a semi-infinite solid", Physics, 7, 195-202. https://doi.org/10.1063/1.1745385
  46. Narasimha Rao, S. and Prasad, Y.V.S.N. (1993), "Uplift behaviour of pile anchors subjected to lateral cyclic loading", J. Geotech. Eng., 119(4), 786-790. https://doi.org/10.1061/(ASCE)0733-9410(1993)119:4(786)
  47. Narasimha Rao, S., Prasad, Y.V.S.N. and Veeresh, C. (1993), "Behavior of embedded model screw anchors in soft clays", Geotechnique, 43(4), 604-614.
  48. Nguyen, L., Fatahi, B. and Khabbaz, H. (2014), "A constitutive model for cemented clays capturing cementation degradation", Int. J. Plast., 56, 1-18. https://doi.org/10.1016/j.ijplas.2014.01.007
  49. Oveseen, N.K. (1979), "The scaling law relationship - Panel discussion", Proceedings of the 7th European Conference on Soil Mechanics and Foundation Engineering, Brighton, UK, September, Volume 4, pp. 319-323.
  50. PLAXIS (2007), PLAXIS 3D Foundation Version 2, PLAXIS bv, The Netherlands.
  51. Poulos, H.G. (1971a), "Behavior of laterally loaded piles: I - Pile groups", J. Soil Mech. Found. Div. 97(SM-5), 711-731.
  52. Poulos, H.G. (1971b), "Behavior of laterally loaded Piles: II - Single piles", J. Soil Mech. Found. Div., 97(SM-5), 733-751.
  53. Poulos, H.G. (1973), "Load deflection prediction for laterally loaded piles", Australian Geomech., G3(1), 1-8.
  54. Poulos, H.G. (1988), Marine Geotechnics, Unwin Hyman, London, UK.
  55. Poulos, H.G. and Davis, E.H. (1980), Pile Foundation Analysis and Design, John Wiley & Sons, New York, USA.
  56. Reese, L.C. (1977), "Laterally loaded piles: Program documentation", J. Geotech. Eng. Div., 103(4), 287-305.
  57. Reese, L.C. and Van Impe, W.F. (2011), Single Piles and Pile Groups under Lateral Loading, 2nd Edition, Taylor & Francis Group, London, UK.
  58. Reese, L.C., Cox, W.R. and Koop, F.D. (1975), "Field testing and analysis of laterally loaded piles in stiff clay", Proceedings of the Seventh Annual Offshore Technology Conference, Houston, TX, USA, May, pp. 671-675.
  59. Robinsky E.I. and Morrison C.F. (1964), "Sand displacement and compaction around model friction piles", Can. Geotech. J., 1(2), 81-93. https://doi.org/10.1139/t64-002
  60. Sawant, V.A. and Shukla, S.K. (2012), "Finite element analysis for Laterally loaded Piles in sloping ground", Coupled Syst. Mech., Int. J., 1(1), 59-78. https://doi.org/10.12989/csm.2012.1.1.059
  61. Som, N. (1993), "Behaviour of foundations on soft clay reinforced with timber piles", Final Technical Report, CSIR Project, No. 22 (203)/87-EMR II, Department of Civil Engineering, Jadavpur University, Kolkata, India.
  62. Schofield, A.N. (1980), "Cambridge University geotechnical centrifuge operation: Rankine lecture". Geotechnique, 30(3), 227-268. https://doi.org/10.1680/geot.1980.30.3.227
  63. Tabatabaiefar, S.H.R., Fatahi, B. and Samali, B. (2013a), "Lateral seismic response of building frames considering dynamic soil-tructure interaction effects", Struct. Eng. Mech., Int. J., 45(3), 311-321. https://doi.org/10.12989/sem.2013.45.3.311
  64. Tabatabaiefar, S.H.R., Fatahi, B. and Samali, B. (2013b), "Seismic behavior of building frames considering dynamic soil-structure interaction", Int. J. Geomech., 13(4), 409-420. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000231
  65. Taylor, R.N. (1995), Centrifuges in Modelling: Principles and Scaling Effects, Geotechnical Centrifuge Technology, Blackie, London, UK, pp. 19-33.
  66. Turner, J.P. and Kulhawy, F.H. (1987), "Experimental analysis of drilled foundations subjected to repeated axial loads under drained conditions", Report EL-5325, Electric Power Research Institute, Palo Alto, CA, USA.
  67. Voottipruex, P., Suksawat, T., Bergado, D.T. and Jamsawang, P. (2011), "Numerical simulations and parametric study of SDCM and DCM piles under full scale axial and lateral loads", Comput. Geotech., 38(3), 318-329. https://doi.org/10.1016/j.compgeo.2010.11.006
  68. Yang, Z. and Jeremic, B. (2002), "Numerical analysis of pile behaviour under lateral loads in layered elastic-plastic soils", Int. J. Numer. Anal. Method. Geomech., 126(14), 1385-1406.

Cited by

  1. Laterally Loaded Single Pile Response Considering the Influence of Suction and Non-Linear Behaviour of Reinforced Concrete Sections vol.7, pp.12, 2017, https://doi.org/10.3390/app7121310
  2. Numerical Solution of Single Pile Subjected to Torsional Cyclic Load vol.17, pp.8, 2017, https://doi.org/10.1061/(ASCE)GM.1943-5622.0000905
  3. Influence of Size and Load-Bearing Mechanism of Piles on Seismic Performance of Buildings Considering Soil–Pile–Structure Interaction vol.17, pp.7, 2017, https://doi.org/10.1061/(ASCE)GM.1943-5622.0000869
  4. Undrained lateral capacity of rectangular piles under a general loading direction and full flow mechanism 2018, https://doi.org/10.1007/s12205-017-0062-7
  5. Dynamic lateral response of under-reamed vertical and batter piles vol.158, 2018, https://doi.org/10.1016/j.conbuildmat.2017.10.042
  6. Extended Finite Layer Method for Semi-space Ground Analysis vol.35, pp.2, 2017, https://doi.org/10.1007/s10706-016-0141-4
  7. Effect of Particle Size Distribution on Soil-Steel Interface Shear Behavior vol.54, pp.5, 2017, https://doi.org/10.1007/s11204-017-9474-0
  8. Axial Resistance of Bored Piles Socketed into Soft Rock pp.1976-3808, 2019, https://doi.org/10.1007/s12205-018-0942-5
  9. Horizontal Loading Tests on Disconnected Piled Rafts and a Simplified Method to Evaluate the Horizontal Bearing Capacity vol.2018, pp.1687-8094, 2018, https://doi.org/10.1155/2018/3956509
  10. Measured and Predicted Response of Pile Groups in Soft Clay Subjected to Cyclic Lateral Loading vol.18, pp.7, 2018, https://doi.org/10.1061/(ASCE)GM.1943-5622.0001188
  11. Finite element analyses of the stability of a soil block reinforced by shear pins vol.12, pp.6, 2014, https://doi.org/10.12989/gae.2017.12.6.1021
  12. Piles Subjected to Torsional Cyclic Load: Numerical Analysis vol.5, pp.None, 2014, https://doi.org/10.3389/fbuil.2019.00024
  13. Behavior of Piles Subjected to Surcharge Loading in Deep Soft Soils: Field Tests vol.37, pp.5, 2014, https://doi.org/10.1007/s10706-019-00890-5
  14. Assessment of the Internal Shaft Friction of Tubular Piles in Jointed Weak Rock Using the Discrete-Element Method vol.33, pp.6, 2014, https://doi.org/10.1061/(asce)cf.1943-5509.0001338
  15. Model study on the performance of single-finned piles in clay under lateral load vol.13, pp.4, 2014, https://doi.org/10.1007/s12517-020-5068-7
  16. Internal Force Analysis of Buried-boring Piles in the Yuanzishan Landslide vol.10, pp.16, 2020, https://doi.org/10.3390/app10165416
  17. Effect of vertical loads on pile group response subjected to lateral cyclic loading with different configuration of piles: experimental study vol.1076, pp.1, 2014, https://doi.org/10.1088/1757-899x/1076/1/012088
  18. Slope topography effect on the seismic response of mid-rise buildings considering topography-soil-structure interaction vol.20, pp.2, 2014, https://doi.org/10.12989/eas.2021.20.2.187
  19. Slope topography effect on the seismic response of mid-rise buildings considering topography-soil-structure interaction vol.20, pp.2, 2014, https://doi.org/10.12989/eas.2021.20.2.187