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Sep 1, 2008

Centrifuge Modeling of Rock-Fill Embankments on Deep Loose Saturated Sand Deposits Subjected to Earthquakes

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Publication: Journal of Geotechnical and Geoenvironmental Engineering
Volume 134, Issue 9

Abstract

Rockfill is commonly used for construction of artificial islands, breakwaters, jetties, quay walls, coastal defenses, protective barriers for reclaimed land, and even as ship impact protection structures around bridge piers. The economic construction method often involves rock dumping onto loose or liquefiable sediments with little or no ground improvement. Hence in a seismic environment, these rock-fill or rubble mound structures are potentially vulnerable to failure due to pore pressure generation effects of the underlying deposits. This paper presents experimental investigation carried out using dynamic centrifuge modeling to study the seismic performance of rock-fill or rubble mound embankment structures on liquefiable sand deposits. The centrifuge test results indicate that the rock-fill embankments suffer substantial settlement owing to rock-fill penetration into the founding sand deposit assisted by the pore pressure generation effects. This mechanism of failure was not, however, observed for a sand embankment where the particle size distribution is comparable to the foundation. This result has important implications in the design methodologies adopted for rock-fill or rubble mound structures.

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References

Craig, R. F. (1998). “Soil mechanics.” 6th Ed., E & FN Spon, London.
Dobry, R., Taboada, V., and Liu, L. (1995). “Centrifuge modeling of liquefaction effects during earthquakes.” 1st Int. Conf. on Earthquake Geotechnical Engineering, 129–162.
Earthquake Engineering Research Institute (EERI). (1990). “Loma Prieta earthquake reconnaissance report.” Earthquake Spectra, 6(S1), 81–125.
Gaither, W. S. (1981). “Industrial islands in the United States: Present and potential.” Proc., Int. Conf. on Industrial Islands, Institute of Mechanical Engineers, London, 61–67.
Ghosh, B., and Madabhushi, S. P. G. (2002). “An efficient tool for measuring shear wave velocity in the centrifuge.” Proc., Int. Conf. on Physical Modelling in Geotechnics, Balkema, Rotterdam, The Netherlands, 119–124.
Ishihara, K., Tatsuoka, F., and Yasuda, S. (1975). “Undrained deformation and liquefaction of sand under cyclic stresses.” Soils Found., 15(1), 29–44.
Kiara, A., Memos, C., and Tsiachris, A. (2001). “Some practical aspects on the seismic behavior of rubble-mound breakwaters.” Ports 2001, Proc., Conf. of April 29–May 2, 2001, Norfolk, Va., sponsored by Ports and Harbors Committee of the Coasts, Oceans, Ports and Rivers Institute of the American Society of Civil Engineers and U.S. Section of the Permanent International Association of Navigation Congresses (PIANC), cohosted by Virginia Port Authority, Naval Facilities Engineering Command, Norfolk, Va., ASCE, Reston, Va.
Kutter, B. L. (1982). “Centrifugal modelling of the response of clay embankments to earthquakes.” Ph.D. thesis, Cambridge Univ., Cambridge, U.K.
Liu, L., and Dobry, R. (1994). “Seismic settlements and pore pressures of shallow foundations.” Proc., Int. Conf. on Centrifuge 94, Taylor & Francis, 227–232.
Luong, M. P., and Sidaner, J. F. (1981). “Undrained behaviour of cohesionless soils under cyclic and transient loading.” Int. Conf. on Recent Advances in Geotechnical Engineering and Soil Dynamics, Vol. 1, Univ. of Missouri-Rolla, Rolla, Mo., 215–220.
Madabhushi, S. P. G., Schofield, A. N., and Lesley, S. (1998). “A new stored angular momentum (SAM) based earthquake actuator.” Proc., Int. Conf. Centrifuge 98, Balkema, Rotterdam, The Netherlands.
Memos, C., and Protonotarios, J. N. (1992). “Patras breakwater failure due to seismic loading.” Proc., 23rd Conf. of Coastal Engineering, Vol. 3, ASCE, Reston, Va., 3343–3356.
Peiris, L. M. N. (1998). “Centrifuge modelling of rock-fill embankments on deep loose saturated sand deposits.” Ph.D. thesis, Univ. of Cambridge, Cambridge, U.K.
Peiris, L. M. N., Madabhushi, S. P. G., and Schofield, A. N. (1998). “Behaviour of gravel embankments founded on loose saturated sand deposits subjected to earthquakes and with different pore fluids.” Proc., Int. Conf. on Centrifuge 98, Balkema, Rotterdam, The Netherlands.
PIANC. (2004). “Seismic design guidelines for port structures.” PIANC, Working Group No. 34 of the Maritime Navigation Commission, International Navigation Association.
Schofield, A. N. (1980). “Cambridge geotechnical centrifuge operations.” Geotechnique, 25(4), 229–267.
Schofield, A. N. (1981). “Dynamic and earthquake centrifuge modelling.” Proc., Int. Conf. on Recent Advances in Geotechnical Earthquake Engineering and Soil Dynamics, Vol. III, Univ. of Missouri-Rolla, Rolla, Mo., 1081–1099.
Schofield, A. N., and Zeng, X. (1992). “Design and performance of an equivalent shear beam (ESB) container for earthquake centrifuge modelling.” Technical Rep. No. CUED/D-SOILS/TR245, Dept. of Engineering, Cambridge Univ., Cambridge, U.K.
Sekiguchi, H., Hayoung, K., and Katsutoshi, K. (2001). “Shaking table tests on seismic deformation of composite breakwaters.” Proc., 4th Int. Conf. on Recent Advances in Geotechnical Earthquake Engineering and Soil Dynamics and Symposium in Honour of Professor W. D. Liam Finn, Japanese Geotechnical Society, Tokyo.
Sekiguchi, H., Kita, K., Hashimoto, K., and Katsui, H. (1996). “Deformation of composite breakwaters due to ground shaking.” Soils Found., 169–177.
Whitman, R. V., Lambe, P. C., and Akiyama, J. (1982). “Consolidation during dynamic tests on a centrifuge.” Proc., American Society of Civil Engineers Spring Convention, ASCE, Reston, Va.
Whittkop, R. C. (1993). “Applications of VELACS philosophy to Port of Los Angeles Pier 400 project.” Int. Conf. on Verifications of Numerical Procedures for the Analysis of Soil Liquefaction Problems (VELACS), Vol. 2, Balkema, Rotterdam, The Netherlands, 1647–1655.
Yuksel, Y., Cetin, K. O., Ozguven, O., Islik, N. S., Cevik, E., and Sumer, B. M. (2004). “Seismic response of a rubble mound breakwater in Turkey.” Proc. Inst. Civ. Eng., Waters. Maritime Energ., 157(MA4), 151–161.

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Go to Journal of Geotechnical and Geoenvironmental Engineering
Journal of Geotechnical and Geoenvironmental Engineering
Volume 134Issue 9September 2008
Pages: 1364 - 1374

History

Received: Jan 13, 2004
Accepted: Jan 5, 2007
Published online: Sep 1, 2008
Published in print: Sep 2008

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Authors

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L. M. N. Peiris, M.ASCE
Senior Modeler, Risk Management Solutions, 30 Monument St., London EC3R 8NB, UK.
S. P. G. Madabhushi
Reader, Dept. of Engineering, Univ. of Cambridge, Trumpington St., Cambridge, CB2 1PZ, UK.
A. N. Schofield
Professor Emeritus, Dept. of Engineering, Univ. of Cambridge, Trumpington St., Cambridge, CB2 1PZ, UK.

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