EFFECT OF WEATHERED SURFACE CRUST LAYER ON STABILITY OF MUAR TRIAL EMBANKMENT

Authors

  • Ali Sobhanmanesh Ground Improvement Research Group, Department of Geotechnics and Transportation, Faculty of Civil Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia
  • Ramli Nazir Ground Improvement Research Group, Department of Geotechnics and Transportation, Faculty of Civil Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia
  • Nader SaadatkhaH Department of Civil Engineering, Faculty of Engineering, Universiti Putra Malaysia, 43400 UPM Serdang, Selangor, Malaysia

DOI:

https://doi.org/10.11113/jt.v76.5430

Keywords:

Muar trial embankment, surface crust layer, finite element analysis, stability analysis, safety factor

Abstract

his paper attempts to evaluate the effect of surface crust layer on the stability and deformation behavior of embankment. A full-scale case history trial embankment constructed on Muar flat in the valley of the Muar River in Malaysia was modeled and analyzed. The Muar trial embankment was simulated in two- and three-dimension (2-D and 3-D) utilizing finite element programs PLAXIS 2-D AND PLAXIS 3-D FOUNDATION, using staged-construction procedure. Sensitivity analysis was performed by varying the thickness of weathered crust layer beneath the embankment fill, i.e., three models of embankment with no surface crust, 1 m surface crust and 2 m surface crust layer. Predictions were made for the vertical and the horizontal displacements of the embankment. Factor of safety for each meter increase in the embankment height was defined until the failure is reached. It is concluded that the bearing capacity of the ground and the deformation behavior of the embankment were sensitive to the thickness of the weathered crust layer. The surface crust layer has a positive effect on the stability of the embankment and consequently reduces the settlement and increases the failure height of the embankment fill up to 37%.

References

Koerner, R. M. 2005. Designing with Geosynthetics. 5th ed. Prentice Hall.

Hudson, R. R., Toh, C. T. and Chan, S. F. 1989. The embankment built to failure. In: (eds.), The International Symposium on Trial Embankments on Malaysian Marine Clay. Kuala Lumpur: Malaysian Highway Authority.

Meyerhof, G. G. and Hanna, A. M. 1978. Ultimate bearing capacity of foundations on layered soils under inclined load. Canadian Geotechnical Journal. 15(4): 565-572.

Meyerhof, G. G. 1974. Ultimate bearing capacity of footing on sand layer overlying clay. Canadian Geotechnical Journal. 11(2): 223-229.

Merifield, R. S. Sloan, S. W. and Yu, H. S. 1999. Rigorous plasticity solutions for the bearing capacity of two-layeredâ€. Geotechnique. 49(4): 471-490.

Zhang, J. Yao, Y. Zheng, J. Zhou, C. 2014. Centrifugal Model Test of Failure Mode and Addition Stress Distribution of a Soft Foundation with an Upper Crust. Electronic Journal of Geotechnical Engineering (EJGE). 19: 9309-9322.

Yan-xu, W. Xia, C. 2009. Mechanism analysis of abutment pile foundation on soft ground affected by closure effect. Soil Engineering and Foundation. 23(5): 43-46.

Xizhao, W. Yongcheng, X. 1996. A Study of the Horizontal Stress in Mucky Layer under Surface Loads. Journal of Shijiazhuang Railway Institute. 9(4): 11-16.

Zhu, F. Zhan, G. Nie, L. 2012. Study on a Calculation Method of Critical Embankment Height on Natural Soft Foundation Considering the Effect of Crust Layer. Applied Mechanics and Materials. 208: 202-209.

Leroueil, S. Tavenas, F. Roy, M. 1978. Construction pore pressures in clay foundations under embankments. Part I: the Saint-Alban test fills. Canadian Geotechnical Engineering. 15: 54-65.

Leroueil, S. Tavenas, F. 1978. Construction pore pressures in clay foundations under embankments. Part II: generalized behaviour. Canadian Geotechnical Engineering. 15: 66-82.

Xiaomou Wang. 2002. Calculation of proportional limit load for soft clay foundation involving the effect of dry crust. Chinese Journal of Geotechnical Engineering. 24(6): 720-723.

Wen, Y. Zhou, J. Jia, M. 2007. Critical edge pressure of soft clay foundation considering closure effect and stress dispersion of crust. Rock and Soil Mechanics. 28(8): 1715-1718.

Balasubramaniam, A. S. Phien-WEJ, N. Indraratna, B Bergado, D. T. 1989. Predicted behavior of a test embankment on a Malaysian marine clay. In: International Symposium On Trial Embankments On Malaysian Marin Clays. Kuala lumpur: The Malaysian highway authority. 1–8.

Lo, K. Y. Hinchberger, S. D. 2006. Stability analysis accounting for macroscopic and microscopic structures in clays. Proceedings of the 4th International Conference on Soft Soil Engineering, 2006, Vancouver, B.C.: Taylor and Francis, London, 3–34.

Brinkgreve, R. B. J. 2010. PLAXIS 2D Reference Manual. The Netherlands: Delft University of Technology & Plaxis B.

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Published

2015-09-08

Issue

Section

Science and Engineering

How to Cite

EFFECT OF WEATHERED SURFACE CRUST LAYER ON STABILITY OF MUAR TRIAL EMBANKMENT. (2015). Jurnal Teknologi (Sciences & Engineering), 76(2). https://doi.org/10.11113/jt.v76.5430