Numerical Simulation of Piles Subjected To Lateral Spreading and Comparison with Shaking Table Results

Document Type : Research Papers

Authors

Razi University

Abstract

Pile foundations are relatively vulnerable to lateral loads. During liquefaction-induced lateral spreading, this vulnerability is particularly conspicuous due to a loss of strength and stiffness in the liquefied soil. A nonlinear effective stress analysis incorporating an elastoplastic constitutive model based on Finite Difference Method (FLAC2D program) was used to numerically simulate shake table experiment on piles in laterally spreading soils. The soil-pile interaction has been properly considered by using interface elements. The main objective of this paper is to assess the accuracy of a 2D numerical simulation of physical models in predicting the dynamic response of pile foundations and to identify the capability of 2D numerical simulation for 3D effects such as shadow and neighboring effects in pile groups without a pile cap. Results are presented and discussed, in which the obtained response from the simulation is compared to that measured in the test. For the single pile, a fairly good agreement was observed between computed and measured results. It was also found that the shadow and neighboring effects reduced lateral load on the piles by few percent of difference compared with experimental results.

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Abdoun, T., Dobry, R., Zimmie, T.F. and Zeghal, M. (2005). “Centrifuge research of countermeasures to protect pile foundations against liquefaction-induced lateral spreading”, Journal of Earthquake Engineering, 9 (sup001), 105-125.
Asaadi, A. and Sharifipour, M. (2015). “Numerical simulation of liquefaction susceptibility of soil interacting by single pile”, International Journal of Mining and Geo-Engineering, 49(1), 47-56.
Askari, F., Dabiri, R., Shafiee, A. and Jafari, M.K. (2011). “Liquefaction resistance of sand-silt mixtures using laboratory based shear Wave velocity”, International Journal of Civil Engineering, 9(2), 135-144.
Byrne, P.M. (1991). “A cyclic shear-volume coupling and pore pressure model for sand”, Proceedings of the 2nd International Conference on Recent Advances in Geotechnical Earthquake Engineering and Soil Dynamics, St. Louis.
Byrne, P.M., Park, S.-S., Beaty, M., Sharp, M., Gonzalez, L. and Abdoun, T. (2004). “Numerical modeling of liquefaction and comparison with centrifuge tests”, Canadian Geotechnical Journal, 41(2), 193-211.
Chang, D., Boulanger, R., Brandenberg, S. and Kutter, B. (2013). “FEM analysis of dynamic soil-pile-structure interaction in liquefied and laterally spreading ground”, Earthquake Spectra, 29(3), 733-755.
Cheng, Z. and Jeremić, B. (2009). “Numerical modeling and simulation of pile in liquefiable soil”, Soil Dynamics and Earthquake Engineering, 29(11), 1405-1416.
Dabiri, R., Askari, F., Shafiee, A. and Jafari, M. (2011). “Shear wave velocity-based liquefaction resistance of sand-silt mixtures: Deterministic versus probabilistic approach”, Iranian Journal of Science and Technology Transaction B: Engineering, 35(C2), 199-215.
Donovan, K., Pariseau, W. and Cepak, M. (1984). “Finite Element approach to cable bolting in steeply dipping VCR slopes”, Geomechanics Application in Underground Hardrock Mining, 65-90.
Haeri, S. M., Kavand, A., Rahmani, I. and Torabi, H. (2012). “Response of a group of piles to liquefaction-induced lateral spreading by large scale shake table testing”, Soil Dynamics and Earthquake Engineering, 38, 25-45.
He, L., Elgamal, A., Hamada, M. and Meneses, J. (2008). “Shadowing and group effects for piles during earthquake-induced lateral spreading”, Proceedings of the 14th World Conference on Earthquake Engineering, Beijing, China.
Iai, S., Tobita, T. and Nakahara, T. (2005). “Generalised scaling relations for dynamic centrifuge tests”, Geotechnique, 55(5), 355-362.
Itasca Consulting Group, I. (2011). FLAC-fast Lagrangian analysis of continua, User’s manual, version 7.0, Minneapolis.
Karimi, Z. and Dashti, S. (2015). “Numerical and centrifuge modeling of seismic soil–foundation–structure interaction on liquefiable ground”, Journal of Geotechnical and Geoenvironmental Engineering, 142(1), 04015061.
Kuhlemeyer, R.L. and Lysmer, J. (1973). “Finite Element method accuracy for wave propagation problems”, Journal of Soil Mechanics and Foundations Division, 99(SM5), (Technical Report).
Mirlatifi, S.A., Fakher, A. and Ghalandarzadeh, A. (2007). “Seismic study of reinforced earth walls by shaking table model tests”, In 4th International Conference on Earthquake Geotechnical Engineering, Paper No. 1253.
Oberkampf, W.L., Trucano, T.G. and Hirsch, C. (2004). “Verification, validation, and predictive capability in computational engineering and physics”, Applied Mechanics Reviews, 57(5), 345-384.
Popescu, R. and Prevost, J.H. (1993). “Centrifuge validation of a numerical model for dynamic soil liquefaction”, Soil Dynamics and Earthquake Engineering, 12(2), 73-90.
Rahmani, A., Fare, O.G. and Pak, A. (2012). “Investigation of the influence of permeability coefficient on the numerical modeling of the liquefaction phenomenon”, Scientia Iranica, 19(2), 179-187.
Rahmani, A. and Pak, A. (2012). “Dynamic behavior of pile foundations under cyclic loading in liquefiable soils”, Computers and Geotechnics, 40(March), 114-126.
Shahir, H., Pak, A., Taiebat, M. and Jeremić, B. (2012). “Evaluation of variation of permeability in liquefiable soil under earthquake loading”, Computers and Geotechnics, 40, 74-88.
Su, L., Tang, L., Ling, X.Z., Ju, N. P. and Gao, X. (2015). “Responses of reinforced concrete pile group in two-layered liquefied soils: shake-table investigations”, Journal of Zhejiang University Science A, 16(2), 93-104.
Tokimatsu, K., Oh-Oka, H., Shamoto, Y., Nakazawa, A. and Asaka, Y. (1997). “Failure and deformation modes of piles caused by liquefaction-induced lateral spreading in 1995 Hyogoken-Nambu earthquake”, Proceedings of the Third Kansai International Geotechnical Forum on Comparative Geotechnical Engineering.
Tokimatsu, K., Suzuki, H. and Sato, M. (2005). “Effects of inertial and kinematic interaction on seismic behavior of pile with embedded foundation”, Soil Dynamics and Earthquake Engineering, 25(7), 753-762.
Towhata, I., Sesov, V., Motamed, R. and Gonzalez, M. (2006). “Model tests on lateral earth pressure on large group pile exerted by horizontal displacement of liquefied sandy ground”, 8th US National Conference on Earthquake Engineering, San Francisco, California.
Wilson, D.W. (1998). “Soil-pile-superstructure interaction in liquefying sand and soft clay”, PhD Thesis, University of California, Davis.