DOI QR코드

DOI QR Code

Behaviour of geocell reinforced soft clay bed subjected to incremental cyclic loading

  • Hegde, A. (Department of Civil and Environmental Engineering, Indian Institute of Technology) ;
  • Sitharam, T.G. (Department of Civil Engineering, Indian Institute of Science)
  • Received : 2015.01.22
  • Accepted : 2015.12.31
  • Published : 2016.04.25

Abstract

The paper deals with the results of the laboratory cyclic plate load tests performed on the reinforced soft clay beds. The performances of the clay bed reinforced with geocells and geocells with additional basal geogrid cases are compared with the performance of the unreinforced clay beds. From the cyclic plate load test results, the coefficient of elastic uniform compression ($C_u$) was calculated for the different cases. The $C_u$ value was found to increase in the presence of geocell reinforcement. The maximum increase in the $C_u$ value was observed in the case of the clay bed reinforced with the combination of geocell and geogrid. In addition, 3 times increase in the strain modulus, 10 times increase in the bearing capacity, 8 times increase in the stiffness and 90% reduction in the settlement was observed in the presence of the geocell and geogrid. Based on the laboratory test results, a hypothetical case of a prototype foundation subjected to cyclic load was analyzed. The results revealed that the natural frequency of the foundation-soil system increases by 4 times and the amplitude of the vibration reduces by 92% in the presence of the geocells and the geogrids.

Keywords

References

  1. ASTM D-4885 (2011), Standard test method for determining performance strength of geomembranes by wide strip tensile method; ASTM International, West Conshohocken, PA, USA.
  2. ASTM D-6637 (2011), Standard test method for determining the tensile properties of geogrid by the single or multi-rib tensile method; ASTM International, West Conshohocken, PA, USA.
  3. Barkan, D.D. (1962), Dynamics of Bases and Foundations, McGraw Hill Book Co., Inc., New York, NY, USA.
  4. Bathurst, R.J. and Karpurapu, R. (1993), "Large scale triaxial tests on geocell reinforced granular soils", Geotech. Test. J., 16(3), 296-303. https://doi.org/10.1520/GTJ10050J
  5. Bhatia, K.G. (2008), "Foundations for industrial machines and earthquake effects", ISET J. Earthq. Technol., 45(1-2), 13-29.
  6. Binquet, J. and Lee, L.K. (1975), "Bearing capacity tests on reinforced earth slabs", J. Geotech. Eng. Div., 101(12), 1241-1255.
  7. Dash, S.K. and Bora, M.C. (2013), "Improved performance of soft clay foundations using stone columns and geocell-sand mattress", Geotext. Geomembr., 41, 26-35. https://doi.org/10.1016/j.geotexmem.2013.09.001
  8. Dash, S.K., Rajagopal, K. and Krishnaswamy, N.R. (2001a), "Strip footing on geocell reinforced sand beds with additional planar reinforcement", Geotext. Geomembr., 19(8), 529-538. https://doi.org/10.1016/S0266-1144(01)00022-X
  9. Dash, S.K., Krishnaswamy, N.R. and Rajagopal, K. (2001b), "Bearing capacity of strip plates supported on geocell-reinforced sand", Geotext. Geomembr., 19(4), 235-256. https://doi.org/10.1016/S0266-1144(01)00006-1
  10. DIN 18134 (2001), Determining the Deformation and Strength Characteristics of Soil by Plate Loading Tests, German standard, Berlin, Germany, 10772.
  11. Fakher, A. and Jones, C.J.F.P. (1996), "Discussion on Bearing capacity of rectangular footings on geogrid reinforced sand", J. Geotech. Eng., 122(4), 326-327. https://doi.org/10.1061/(ASCE)0733-9410(1996)122:4(326)
  12. Hegde, A. and Sitharam, T.G. (2013), "Experimental and numerical studies on plates supported on geocell reinforced sand and clay beds", In. J. Geotech. Eng., 7(4), 347-354.
  13. Hegde, A.M. and Sitharam, T.G. (2015a), "Effect of infill materials on the performance of geocell reinforced soft clay beds", Geomech. Geoeng., 10(3), 163-173. https://doi.org/10.1080/17486025.2014.921334
  14. Hegde, A. and Sitharam, T.G. (2015b), "Experimental and numerical studies on protection of buried pipelines and underground utilities using geocells", Geotext. Geomembr., 43(5), 372-381. https://doi.org/10.1016/j.geotexmem.2015.04.010
  15. Hegde, A. and Sitharam, T.G. (2015c), "Joint strength and wall deformation characteristics of a single cell subjected to uniaxial compression", Int. J. Geomech., 15(5), 1-8.
  16. Hegde, A. and Sitharam, T.G. (2015d), "3-Dimensional numerical modelling of geocell reinforced sand beds", Geotext. Geomembr., 43(2), 171-181. https://doi.org/10.1016/j.geotexmem.2014.11.009
  17. Hegde, A.M. and Sitharam, T.G. (2015e), "3-Dimensional numerical analysis of geocell reinforced soft clay beds by considering the actual geometry of geocell pockets", Can. Geotech. J., 52(9), 1396-1407. https://doi.org/10.1139/cgj-2014-0387
  18. Hegde, A. and Sitharam, T.G. (2015f), "Use of Bamboo in Soft Ground Engineering and Its Performance Comparison with Geosynthetics: Experimental Studies", J. Mater. Civil Eng., ASCE, 27(9), 1-9.
  19. Hegde, A. and Sitharam, T.G. (2015g), "Experimental and analytical studies on soft clay beds reinforced with bamboo cells and geocells", Int. J. Geosynth. Ground Eng., 1(2), 1-13.
  20. Hegde, A., Kadabinakatti, S. and Sitharam, T.G. (2014), "Protection of buried pipelines using a combination of geocell and geogrid reinforcement: Experimental studies", Ground Improv. Geosynth., Geotech. Special Publication-238, ASCE, 289-298.
  21. IS 5249 (1992), Determination of Dynamic Properties of Soil-method of Test; Indian standard, New Delhi, India, 110002.
  22. IS 13301 (1992), Vibration Isolation for Machine Foundations-Guidelines; Indian standard, New Delhi, India, 110002.
  23. Leshchinsky, B. and Ling, H. (2013), "Effects of geocell confinement on strength and deformation behavior of gravel", J. Geotech. Geoenviron. Eng., 139(2), 340-352. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000757
  24. Madhavi Latha, G. and Somwanshi, A. (2009), "Effect of reinforcement form on the bearing capacity of square plate on sand", Geotext. Geomembr, 27(6), 409-422. https://doi.org/10.1016/j.geotexmem.2009.03.005
  25. Moghaddas Tafreshi, S.N., Zarei, S.E. and Soltanpour, Y. (2008), "Cyclic loading on foundation to evaluate the coefficient elastic uniform compression in sand", Proceedings of 14th World Conference on Earthquake Engineering, Beijing, China, October.
  26. Murthy, V.N.S. (2007), Advanced Foundation Engineering, CBS Publishers and Distributors, Bangalore, India.
  27. Pokharel, S.K., Han, J., Leshchinsky, D., Parsons, R.L. and Halahmi, I. (2010), "Investigation of factors influencing behavior of single geocell reinforced bases under static loading", Geotext. Geomembr, 28(6), 570-578. https://doi.org/10.1016/j.geotexmem.2010.06.002
  28. Rajagopal, K., Krishnaswamy, N.R. and Madhavi Latha, G. (1999), "Behaviour of sand confined with single and multiple geocells", Geotext. Geomembr, 17(3), 171-181. https://doi.org/10.1016/S0266-1144(98)00034-X
  29. Sireesh, S., Sitharam, T.G. and Dash, S.K. (2009), "Bearing capacity of circular plate on geocell sand mattress overlying clay bed with void", Geotext. Geomembr., 27(2), 89-98. https://doi.org/10.1016/j.geotexmem.2008.09.005
  30. Sireesh, S., Sailesh, P., Sitharam, T.G. and Puppala, A.J (2013), "Numerical analysis of geocell reinforced ballast overlying soft clay subgrades", Geomech. Eng., Int. J., 5(3), 263-281. https://doi.org/10.12989/gae.2013.5.3.263
  31. Sitharam, T.G. and Sireesh, S. (2004), "Model studies of embedded circular footing on geogrid reinforced sand beds", Ground Improv., 8(2), 69-75. https://doi.org/10.1680/grim.2004.8.2.69
  32. Sitharam, T.G. and Hegde, A. (2013), "Design and construction of geocell foundation to support embankment on soft settled red mud", Geotext. Geomembr., 41, 55-63. https://doi.org/10.1016/j.geotexmem.2013.08.005
  33. Sreedhar, M.V. and Goud, P.K. (2011), "Behavior of geosynthetic reinforced sand bed under cyclic loading", Proceedings of Indian Geotechnical Conference, Kochi, India, December, pp. 519-522.
  34. Srinivasalu, P. and Vaidyanathan, C.V. (1976), Handbook of Machine Foundations, Tata Mcgraw Hill Publishing Company Limited. New Delhi, India.
  35. Srinivasa Murthy, B.R., Sridharan, A. and Bindumadhava (1993), "Evaluation of interface frictional resistance", Geotext. Geomembr., 12, 235-253. https://doi.org/10.1016/0266-1144(93)90028-M
  36. Tanyu, B.F., Aydilek, A.H., Lau, A.W., Edil, T.B. and Benson, CH (2013), "Laboratory evaluation of geocell-reinforced gravel sub base over poor subgrades", Geosynth. Int., 20(2), 46-71.
  37. Verma, A.K. and Bhatt, D.R. (2008), "Design of machine foundations on reinforced sand", Proceedings of 12th International Conference of IACMAG, Goa, India, October, pp. 3583-3589.
  38. Vesic, A.S. (1973), "Analysis of ultimate loads of shallow foundations", J. Soil Mech. Found. Div., 99, 45-69.
  39. Viswanadham, B.V.S. and Konig, D. (2004), "Studies on scaling and instrumentation of geogrid", Geotext. Geomembr., 22(5), 307-328. https://doi.org/10.1016/S0266-1144(03)00045-1
  40. Zreik, D.A., Ladd, C.C. and Germaine, J.T. (1995), "A new fall cone device for measuring the undrained strength of very weak cohesive soils", Geotech. Test. J., 18(4), 472-482. https://doi.org/10.1520/GTJ11022J

Cited by

  1. Experimental evaluation of geosynthetics as reinforcement for shotcrete vol.45, pp.3, 2017, https://doi.org/10.1016/j.geotexmem.2017.01.007
  2. Evaluation of strain modulus and deformation characteristics of geosynthetic-reinforced soil – aggregate system under repetitive loading 2017, https://doi.org/10.1080/19386362.2017.1307309
  3. Performance evaluation of geocell-reinforced pavements 2017, https://doi.org/10.1080/19386362.2017.1343988
  4. Geocell reinforced foundation beds-past findings, present trends and future prospects: A state-of-the-art review vol.154, 2017, https://doi.org/10.1016/j.conbuildmat.2017.07.230
  5. Behavior of Flexible Buried Pipes Under Geocell Reinforced Subbase Subjected to Repeated Loading vol.9, pp.1, 2018, https://doi.org/10.4018/IJGEE.2018010102
  6. Comparison of behaviour of basal reinforced piled embankment with two layer of reinforcement vol.16, pp.3, 2016, https://doi.org/10.12989/gae.2018.16.3.233
  7. Effectiveness of geogrid and its position on the performance of unpaved roads under repetitive loading vol.4, pp.1, 2016, https://doi.org/10.1007/s41062-019-0244-x
  8. Application of Machine Learning Techniques for Predicting the Dynamic Response of Geogrid Reinforced Foundation Beds vol.37, pp.6, 2016, https://doi.org/10.1007/s10706-019-00945-7
  9. Performance of Geosynthetics Reinforced Subgrade Subjected to Repeated Vehicle Loads: Experimental and Numerical Studies vol.6, pp.None, 2016, https://doi.org/10.3389/fbuil.2020.00015
  10. Effect of infill materials on vibration isolation efficacy of geocell-reinforced soil beds vol.57, pp.9, 2020, https://doi.org/10.1139/cgj-2019-0135
  11. Full-Scale Field Investigation of Asphalt Pavements Reinforced with Geocells vol.2675, pp.1, 2016, https://doi.org/10.1177/0361198120962091
  12. Numerical investigation of geocell reinforced slopes behavior by considering geocell geometry effect vol.24, pp.6, 2016, https://doi.org/10.12989/gae.2021.24.6.589
  13. Model Tests on Coir Geotextile-Encased Stone Columns with Tyre Crumb-Infilled Basal Coir Geocell vol.7, pp.2, 2016, https://doi.org/10.1007/s40891-021-00274-x