Technical Paper
Jan 11, 2016

Experimental Analysis of Embankment on Ordinary and Encased Stone Columns

Publication: International Journal of Geomechanics
Volume 16, Issue 4

Abstract

This work investigated the behavior of embankment models resting on soft soil reinforced with ordinary and encased stone columns (ESCs). Model tests were performed with different spacing distances between stone columns and two length-to-diameter ratios (L/d) of the stone columns, in addition to different embankment heights. A total of 39 model tests were performed on soil with an undrained shear strength of 10 kPa. The system consisted of a stone column–supported embankment at different spacing-to-diameter ratios (s/d) of stone columns. Earth pressure cells were used to measure directly the vertical stress on the column for all models, and another cell was placed at the base of the embankment between two columns to measure directly the vertical stress in reinforced soft soil. For embankment models constructed on soft clay reinforced with ESCs, it was found that whether a column was floating or end bearing (resting on a rigid stratum), encasement of the column by a geogrid was most effective in improving the bearing ratio of reinforced soil by approximately 1.29, 1.39, and 1.63 times and 1.4, 1.57, and 1.83 times that of untreated soil, reducing the settlement by approximately 0.71, 0.67, and 0.62 times and 0.63, 0.6, and 0.45 times that of untreated soil for 200-, 250-, and 300-mm embankment heights with L/d = 5 and 8, respectively, and spacing s=2.5d. The bearing improvement ratio (bearing capacity of treated-to-untreated soil) increased with decreasing spacing of stone columns for a given embankment. A higher improvement ratio was achieved for the models reinforced with stone columns at s=2.5d at any embankment height.

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References

Abusharar, S. W., and Han, J. (2011). “Two-dimensional deep-seated slope stability analysis of embankments over stone column-improved soft clay.” Eng. Geol., 120(1–4), 103–110.
Al-Shaikhly, A.A. (2000). “Effect of stone grain size on the behavior of stone column.” M.Sc. thesis, Building and Construction Engineering Dept., Univ. of Technology, Baghdad, Iraq.
Al-Waily, M. J. (2008). “Stress concentration ratio of model stone columns improved by additives.” Ph.D. thesis, Building and Construction Engineering Dept., Univ. of Technology, Baghdad, Iraq.
ASTM. (2003a). “Standard test method for direct shear test of soils under consolidated drained conditions.” D3080, West Conshohocken, PA.
ASTM. (2003b). “Standard test method for liquid limit, plastic limit, and plasticity index of soils.” D4318, West Conshohocken, PA.
ASTM. (2003c). “Standard test method for particle-size analysis of soils.” D422, West Conshohocken, PA.
ASTM. (2003d). “Standard test method for specific gravity of soil solids by water pycnometer.” D854, West Conshohocken, PA.
ASTM. (2003e). “Standard test methods for determining tensile properties of geogrids by the single or multi-rib tensile method.” D6637, West Conshohocken, PA.
Bauer, G. E., and Al-Joulani, N. (1996). “Laboratory and analytical investigation of sleeve reinforced stone columns.” Geosynthetics: Application, design and construction, Balkema, Rotterdam, the Netherlands, 463–466.
Britton, E., and Naughton, P. (2008). “An experimental investigation of arching in piled embankments.” Proc., 4th European Geosynthetics Conf., Paper 106, 1–8.
Chen, R. P., Chen, Y. M., Han, J., and Xu, Z. Z. (2008a). “A theoretical solution for pile-supported embankments on soft soils under one-dimensional compression.” Can. Geotech. J., 45(5), 611–623.
Chen, Y. M., Cao, W. P., and Chen, R. P. (2008b). “An experimental investigation of soil arching within basal reinforced and unreinforced piled embankments.” Geotext. Geomembr., 26(2) 164–174.
Craig, W. H., and Al-Khafaji, Z. A. (1997). “Reduction of soft clay settlement by compacted sand piles.” Proc., 3rd Int. Conf. of Ground Improvement, Thomas Telford, London, 218–224.
De Mello, L. G., Mondolfo, M., Montez, F., Tsukahara, C. N., and Bilfinger, W. (2008).“First use of geosynthetic encased sand columns in South America.” Proc., 1st Pan-American Geosynthetics Conf., 1332–1314.
Ellis, E. A., and Aslam, R. (2009). “Arching in piled embankments: Comparison of centrifuge tests and predictive methods–part 1 of 2.” Ground Eng., 42(6), 34–38.
Etezad, M., Hanna, A. M., and Ayadat, T. (2015). “Bearing capacity of a group of stone columns in soft soil.” Int. J. Geomech., 04014043.
Fattah, M. Y., Shlash, K. T., and Al-Waily, M. J. (2011). “Stress concentration ratio of model stone columns in soft clays.” Geotech. Test. J., 34(1), 61–71.
Fattah, M. Y., Zabar, B. S., and Hassan, H. A. (2014). “An experimental analysis of embankment on stone columns.” J. Eng., 20(7), 62–84.
Gniel, J., and Bouazza, A. (2009). “Improvement of soft soils using geogrid encased stone columns.” Geotext. Geomembr., 27(3), 167–175.
Han, J., and Gabr, M. A. (2002). “Numerical analysis of geosynthetic-reinforced and pile-supported earth platforms over soft soil.” J. Geotech. Geoenviron. Eng., 44–53.
Hewlett, W. J., and Randolph, M. F. (1988). “Analysis of piled embankments.” Ground Eng., 21(3), 12–18.
Juran, I., and Guermazi, A. (1988). “Settlement response of soft soils reinforced by compacted sand columns.” J. Geotech. Eng., 930–943.
Kempfert, H. G., and Gebreselassie, B. (2006). Excavations and foundations in soft soils, Springer, Berlin.
Keyhosropur, L., Soroush, A., and Imam, R. (2011). “A study on the behaviour of a geosynthetic encased stone columns group using 3D numerical analysis.” 2011 Pan-Am CGS Geotechnical Conf., Amerkabir Univ. of Technology, Tehran, Iran, 1–7.
Low, B. K., Tang, S. K., and Choa, V. (1994). “Arching in piled embankments.” J. Geotech. Eng., 1917–1938.
Malarvizhi, S. N., and Ilamparuthi, K. (2004). “Load versus settlement of clay-bed stabilized with stone and reinforced stone columns.” Proc., 3rd Asian Regional Conf. on Geosynthetics, GEOASIA, Seoul, Korea, 322–329.
Malarvizhi, S. N., and Ilamparuthi, K. (2006). “Modeling of geogrid encased stone column.” Proc., 2nd Int. Congress on Computational Mechanics and Simulation (ICCMS-06), IIT, Guwahati, India.
Malarvizhi, S. N., and Ilamparuthi, K. (2007). “Comparative study on the behavior of encased stone column and conventional stone column.” Soils Found., 47(5), 873–885.
Murugesan, S., and Rajagopal, K. (2006). “Geosynthetic-encased stone columns: Numerical evaluation.” Geotext. Geomembr., 24(6), 349–358.
Murugesan, S., and Rajagopal, K. (2010). “Studies on the behaviour of single and group of geosynthetic encased stone columns.” J. Geotech. Geoenviron. Eng., 129–139.
Raithel, M., Kirchner, A., Schade, C., and Leusink, E. (2005). “Foundation of construction on very soft soils with geotextile encased columns—State of the art.” Proc., Geofrontiers, Austin, TX.
Sharma, R. S., Kumar, B. P., and Nagendra, G. (2004). “Compressive load response of granular piles reinforced with geogrids.” Can. Geotech. J., 41(1), 187–192.
Shlash, K. T., Fattah, M. Y., and Al-Waily, M. J. M. (2009). “Laboratory investigation on efficiency of model stone column groups.” Eng. Tech. J., 27(9), 1673–1690.
SORB (Iraqi State Organization for Roads and Bridges). (2003). Standard specification for roads and bridges, Iraqi General Specification for Roads and Bridges, Baghdad, Iraq.
Stewart, D., and Fahey, M. (1994). “An investigation of the reinforcing effect on stone columns in soft clay.” Vertical and horizontal deformations of foundations and embankments, Geotechnical special publication 40, A. T. Yeung and G. Y. Felio, eds., ASCE, Reston, VA, 513–524.
Terzahgi, K. (1943). Theoretical soil mechanics, John Wiley and Sons, New York.
Wu, C. S., and Hong, Y. S. (2008). “The behavior of a laminated reinforced granular column.” Geotext. Geomembr., 26(4), 302–316.
Zhang, L., and Zhao, M. (2014). “Deformation analysis of geotextile-encased stone columns.” Int. J. Geomech., 04014053.
Zhang, L., Zhao, M., Shi, C., and Zhao, H. (2013). “Settlement calculation of composite foundation reinforced with stone columns.” Int. J. Geomech., 248–256.
Zhang, Z., Han, J., and Ye, G. (2014). “Numerical investigation on factors for deep-seated slope stability of stone column-supported embankments over soft clay.” Eng. Geol., 168, 104–113.

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Go to International Journal of Geomechanics
International Journal of Geomechanics
Volume 16Issue 4August 2016

History

Received: Dec 8, 2014
Accepted: Jul 2, 2015
Published online: Jan 11, 2016
Discussion open until: Jun 11, 2016
Published in print: Aug 1, 2016

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Mohammed Y. Fattah, A.M.ASCE [email protected]
Professor, Building and Construction Engineering Dept., Univ. of Technology, 10066 Baghdad, Iraq (corresponding author). E-mail: [email protected]
Bushra S. Zabar [email protected]
Assistant Professor, Civil Engineering Dept., Univ. of Baghdad, 10071 Baghdad, Iraq. E-mail: [email protected]
Hanan A. Hassan [email protected]
Lecturer, Highway and Transportation Engineering Dept., Univ. of Al-Mustansiriya, 10052 Baghdad, Iraq. E-mail: [email protected]

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