کلیدواژهها
موضوعات
عنوان مقاله English
نویسندگان English
Lateral ground displacement due to liquefaction causing damages to major infrastructures like buildings, bridges, pipe, shore line utilities etc. When the surface slope is mild, a common mode of failure is lateral spreading with surface displacements that can exceed several meters. Considering the widespread use of pile foundations, their safety in the occurrence of earthquake has a special importance. Studies after the earthquake have shown that both the force due to structure and the Kinematics interaction between the pile foundations and the soil play an important role in mechanical behavior of piles. Since the effect of the superstructure on the pile-soil interaction analysis is significant; the analysis should be done based on the interaction axis of pile-soil-structure. In this study, finite difference method (FDM) has been used to investigate the effect of the thickness of liquefied layer, slope of liquefied layers and the underground water level on behavior of pile foundations. Results indicate that with an increase in the slope of liquefied layers, the maximum bending moment raises but the slope of this graph for low underground water level (near the surface) is higher. This type of behavior also is observed in the shear force created in the pile foundation.
کلیدواژهها English
1. Sarat Kumar Das, “Prediction of Lateral displacement of liquefaction induced Ground using extreme learning ”. Fifth International Conference on Recent Advances in Geotechnical Earthquake Engineering and Soil Dynamics, [2010].
2. Abdoun, T., Dobry, R., O’Rourke, T.D. & Goh, S.H. “Pile response to lateral spreads: centrifuge modeling”, J.Geotechnical and Geoenvironmental Engineering, [2003], Vol. 129,No. 10, pp 869-878.
3. Brandenberg, S.J., Boulanger, R.W., Kutter, B.L. & Chang, D. “ Behaviour of pile foundations in laterally spreading ground during centrifuge tests”, J. Geotechnical and Geoenvironmental Engineering, [2005], Vol. 131, No. 11, pp 1378-1391.
4. Knappett, J.A. & Madabhushi, S.P.G. “Influence of axial load on leteral pile response in liquefiable soils. Part I: physical modelling”, Geotechnique, [2009], Vol 59, No. 7, pp 571 – 581.
5. Hamada, M. “Large ground deformations and their effects on lifelines: 1964 Niigata arthquake”, Case Studies of Liquefaction and Lifeline Performance during Past Earthquakes: Japanese Case Studies, Technical Report NCEER-92-0001, State University of New York at Buffalo, [1992], Vol. 1, 3:1-123.
6. Brandenberg, Scptt J. “Demand fragility surfaces for bridges in liquefied and laterally spreading ground” , PEER-2011/01, Berkeley: Pacific Earthquake Engineering Research Center (PEER) [2011].
9. Finn, W.D.L., Lee, W. and Martin, G.R., , “An Effective Stress Model for Liquefaction,” J.Geotech., Div. ASCE, [1977],GT 6-517~533.
Manual of FLAC, Ver.5.0, “Dynamic Analysis” Itasca Consulting Group Inc,