Technical Papers
Aug 3, 2013

Bearing Capacity of Circular Footings on Reinforced Soils

Publication: International Journal of Geomechanics
Volume 15, Issue 1

Abstract

A method is presented for determining the ultimate bearing capacity of a circular footing reinforced with a horizontal circular sheet of reinforcement placed over granular and cohesive-frictional soils. It was assumed that the reinforcement sheet could bear axial tension but not the bending moment. The analysis was performed based on the lower-bound theorem of the limit analysis in combination with finite elements and linear optimization. The present research is an extension of recent work with strip foundations reinforced with different layers of reinforcement. To incorporate the effect of the reinforcement, the efficiency factors ηγ and ηc, which need to be multiplied by the bearing capacity factors Nγ and Nc, were established. Results were obtained for different values of the soil internal friction angle (ϕ). The optimal positions of the reinforcements, which would lead to a maximum improvement in the bearing capacity, were also determined. The variations of the axial tensile force in the reinforcement sheet at different radial distances from the center were also studied. The results of the analysis were compared with those available from literature.

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References

Adams, M. T., and Collin, J. G. (1997). “Large model spread footing load tests on geosynthetic reinforced soil foundations.” J. Geotech. Geoenviron. Eng., 66–72.
Asaoka, A., Kodaka, T., and Pokhaerl, G. (1994). “Stability analysis of reinforced soil structures using rigid plastic finite element method.” Soils Found., 34(1), 107–118.
Binquet, J., and Lee, K. L. (1975). “Bearing capacity tests on reinforced earth slabs.” J. Geotech. Eng. Div., 101(12), 1241–1255.
Blatz, J. A., and Bathurst, R. J. (2003). “Limit equilibrium analysis of large-scale reinforced and unreinforced embankments loaded by a strip footing.” Can. Geotech. J., 40(6), 1084–1092.
Bottero, A., Negre, R., Pastor, J., and Turgeman, S. (1980). “Finite element method and limit analysis theory for soil mechanics problems.” Comput. Methods Appl. Mech. Eng., 22(1), 131–149.
Boushehrian, J. H., and Hataf, N. (2003). “Experimental and numerical investigation of the bearing capacity of model circular and ring footings on reinforced sand.” Geotext. Geomembr., 21(4), 241–256.
Chakraborty, D., and Kumar, J. (2014). “Bearing capacity of strip foundations in reinforced soils.” Int. J. Geomech., 45–58.
Das, B. M., and Omar, M. T. (1994). “The effects of foundation width on model tests for the bearing capacity of sand with geogrid reinforcement.” Geotech. Geol. Eng., 12(2), 133–141.
Deb, K., Sivakugan, N., Chandra, S., and Basudhar, P. K. (2007). “Numerical analysis of multi layer geosynthetic-reinforced granular bed over soft fill.” Geotech. Geol. Eng., 25(6), 639–646.
Eid, H. T. (2013). “Bearing capacity and settlement of skirted shallow foundations on sand.” Int. J. Geomech., 645–652.
Erickson, H. L., and Drescher, A. (2002). “Bearing capacity of circular footings.” J. Geotech. Geoenviron. Eng., 38–43.
FLAC 4.0 [Computer software]. Minneapolis, ITASCA Consulting Group.
Fragaszy, R. J., and Lawton, E. (1984). “Bearing capacity of reinforced sand subgrades.” J. Geotech. Engrg., 1500–1507.
Gourvenec, S., Randolph, M., and Kingsnorth, O. (2006). “Undrained bearing capacity of square and rectangular footings.” Int. J. Geomech., 147–157.
Guido, V. A., Chang, D. K., and Sweeney, M. A. (1986). “Comparison of geogrid and geotextile reinforced earth slabs.” Can. Geotech. J., 23(4), 435–440.
Jewell, R. A. (1990). “Reinforcement bond capacity.” Geotechnique, 40(3), 513–518.
Kedar, G. D., and Deshmukh, K. C. (2011). “Estimation of temperature distribution and thermal stresses in a thick circular plate.” Afr. J. Math. Comput. Sci. Res., 4(13), 389–395.
Khing, K. H., Das, B. M., Puri, V. K., Cook, E. E., and Yen, S. C. (1993). “The bearing-capacity of a strip foundation on geogrid-reinforced sand.” Geotext. Geomembr., 12(4), 351–361.
Kumar, J., and Khatri, V. N. (2011). “Bearing capacity factors of circular foundations for a general c-ϕ soil using lower bound finite elements limit analysis.” Int. J. Numer. Anal. Methods Geomech., 35(3), 393–405.
Kumar, J., and Sahoo, J. P. (2013). “Bearing capacity of strip foundations reinforced with geogrid sheets by using upper bound finite-element limit analysis.” Int. J. Numer. Anal. Methods Geomech., 37(18), 3258–3277.
Lovisa, J., Shukla, S. K., and Sivakugan, N. (2010). “Behaviour of prestressed geotextile-reinforced sand bed supporting a loaded circular footing.” Geotext. Geomembr., 28(1), 23–32.
Martin, C. M. (2005). “Exact bearing capacity calculations using the method of characteristics.” Proc., 11th Int. Conf. of Int. Association for Computer Methods and Advances in Geomechanics (IACMAG), Vol. 4, Politecnico di Torino & AGI, Torino, Italy, 441–450.
MATLAB 7.9 [Computer software]. Natick, MA, MathWorks.
Michalowski, R. L. (2004). “Limit loads on reinforced foundation soils.” J. Geotech. Geoenviron. Eng., 381–390.
Oh, W. T., and Vanapalli, S. K. (2013). “Interpretation of the bearing capacity of unsaturated fine-grained soil using the modified effective and the modified total stress approaches.” Int. J. Geomech., 769–778.
Omar, M. T., Das, B. M., Puri, V. K., and Yen, S. C. (1993). “Ultimate bearing capacity of shallow foundations on sand with geogrid reinforcement.” Can. Geotech. J., 30(3), 545–549.
Otani, J., Ochiai, H., and Yamamoto, K. (1998). “Bearing capacity analysis of reinforced foundations on cohesive soil.” Geotext. Geomembr., 16(4), 195–206.
Wang, C. X., and Carter, J. P. (2002). “Deep penetration of strip and circular footings into layered clays.” Int. J. Geomech., 205–232.
Yu, H. S., and Sloan, S. W. (1997). “Finite element limit analysis of reinforced soils.” Comp. Struct., 63(3), 567–577.

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Published In

Go to International Journal of Geomechanics
International Journal of Geomechanics
Volume 15Issue 1February 2015

History

Received: Mar 5, 2013
Accepted: Jul 31, 2013
Published online: Aug 3, 2013
Published in print: Feb 1, 2015

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Authors

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Debarghya Chakraborty [email protected]
Visiting Assistant Professor, Dept. of Civil Engineering, Indian Institute of Technology, Kharagpur 721302, India. E-mail: [email protected]
Jyant Kumar [email protected]
Professor, Dept. of Civil Engineering, Indian Institute of Science, Bangalore 560012, India (corresponding author). E-mail: [email protected]

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