DOI QR코드

DOI QR Code

Experimental study of the effect of microstructure on the permeability of saturated soft clays

  • Chen, Bo (College of Civil Engineering and Architecture, Quzhou University) ;
  • Sun, De'an (Department of Civil Engineering, Shanghai University) ;
  • Jin, Pan (College of Civil Engineering and Architecture, Quzhou University)
  • Received : 2019.01.08
  • Accepted : 2019.04.23
  • Published : 2019.05.20

Abstract

The effect of microstructure on the permeability of two saturated marine clays was studied through a series of falling head permeability tests and mercury intrusion porosimetry (MIP) tests. The key findings from this experimental study include the following results: (1) The permeability of undisturbed specimens is larger than that of reconstituted specimens at the same void ratio due to different soil fabrics, i.e., the pore size distributions (PSDs), even though they have the similar variation law in the permeability versus void ratio. (2) Different permeabilities of undisturbed and reconstituted specimens at the same void ratio are mainly caused by the difference in void ratio of macro-pores based on the MIP test results. (3) A high relevant relation between $C_k$ ($C_k$ is the permeability change index) and $e*_{10}$, can be found by normalizing the measured data both on undisturbed or reconstituted specimens. Hence, the reference void ratio $e*_{10}$, can be used as a reasonable parameter to identify the effect of soil fabric on the permeability of saturated soft clays.

Keywords

Acknowledgement

Supported by : National Natural Science Foundation of China, China Scholarship Council

References

  1. Burland, J.B. (1990), "On the compressibility and shear strength of natural clay", Geotechnique, 40(3), 329-378. https://doi.org/10.1680/geot.1990.40.3.329.
  2. Butterfield, R. (1979), "A natural compression law for soils (an advance on e-log p')", Geotechnique, 29(4), 469-480. https://doi.org/10.1680/geot.1979.29.4.469
  3. Casagrande, A. (1936). "The determination of the preconsolidation load and its practical significance", Proceedings of the 1st International Conference on Soil Mechanics and Foundation Engineering, Cambridge, U.S.A., June.
  4. Delage, P. (2006), "Some microstructure effects on the behaviour of compacted swelling clays used for engineered barriers", Chin. J. Rock Mech. Eng., 25(4), 721-732. https://doi.org/10.3321/j.issn:1000-6915.2006.04.007
  5. Deng, Y.F., Yue, X.B., Liu, S.Y., Chen, Y.G. and Zhang, D.W. (2015), "Hydraulic conductivity of cement-stabilized marine clay with metakaolin and its correlation with pore size distribution", Eng. Geol., 193, 146-152. https://doi.org/10.1016/j.enggeo.2015.04.018.
  6. Dolinar, B. (2009), "Predicting the hydraulic conductivity of saturated clays using plasticity-value correlations", Appl. Clay Sci., 45(1-2), 90-94. http://dx.doi.org/10.1016/j.clay.2009.04.001.
  7. Gao, Z.Y. and Hu, Q.H. (2013), "Estimating permeability using median pore-throat radius obtained from mercury intrusion porosimetry", J. Geophys. Eng., 10(2), 025014. https://doi.org/10.1088/1742-2132/10/2/025014
  8. Hall, M.K. and Fox, P.J. (2018), "Large strain consolidation model for land subsidence", Int. J. Geomech., 18(11), 06018028. https://doi.org/10.1061/(ASCE)GM.1943-5622.0001267
  9. Hong, Z.S., Zeng, L.L., Cui, Y.J., Cai, Y.Q. and Lin, C. (2012), "Compression behaviour of natural and reconstituted clays", Geotechnique, 62(4), 291-301. https://doi.org/10.1680/geot.10.P.046
  10. Horpibulsuk, S., Shibuya, S., Fuenkajorn, K. and Katkan, W. (2007), "Assessment of engineering properties of Bangkok clay", Can. Geotech. J., 44(2), 173-187. https://doi.org/10.1139/t06-101.
  11. Lacasse, S., Berre, T. and Lefebvre, G. (1985), "Block sampling of sensitive clays", Proceeding of 11th International Conference on Soil Mechanics and Foundation Engineering, San Francisco, U.S.A., August.
  12. Lapierre, C., Leroueil, S. and Locat, J. (1990), "Mercury intrusion and permeability of Louiseville clay", Can. Geotech. J., 27(6), 761-773. https://doi.org/10.1139/t90-090.
  13. Le, T.T., Cui, Y.J., Munoz, J.J., Delage, P., Tang, A.M. and Li, X.L. (2011), "Studying the stress-suction coupling in soils using an oedometer equipped with a high capacity tensiometer", Front. Architect. Civ. Eng. China, 5(2), 160-170. https://doi.org/10.1007/s11709-011-0106-x.
  14. Lei, H.Y., Feng, S.X. and Jiang, Y. (2018), "Geotechnical characteristics and consolidation properties of Tianjin marine clay", Geomech. Eng., 16(2), 125-140. https://doi.org/10.12989/gae.2018.16.2.125.
  15. Leroueil, S., Diene, M., Tavenas, F., Kabbaj, M. and Rochelle, P. (1988), "Direct determination of permeability of clay under embankments", J. Geotech. Eng., 114(6), 645-657. https://doi.org/10.1061/(ASCE)0733-9410(1988)114:6(645).
  16. Mesri, G. and Rokhsar, A. (1974), "Consolidaiton of normally consolidated clay", J. Soil Mech. Found. Eng., 100(8), 889-903.
  17. Mitchell, J.K. (1993), Fundamentals of Soil Behavior, Wiley, New York, U.S.A.
  18. Nagaraj, T.S., Pandian, N.S. and Raju, P.S.R.N. (1991), "An approach for prediction of compressibility and permeability behaviour of sand-bentonite mixes." Indian Geotech. J., 21(3), 271-282.
  19. Oren, A.H., Aksoy, Y.Y., Onal, O. and Demirk, H. (2018), "Correlating the hydraulic conductivities of GCLs with some properties of bentonites", Geomech. Eng., 15(5), 1091-1100. https://doi.org/10.12989/gae.2018.15.5.1091
  20. Sridharan, A. and Nagaraj, H.B. (2005), "Hydraulic conductivity of remolded fine-grained soils versus index properties", Geotech. Geol. Eng., 23(1), 43-60. https://doi.org/10.1007/s10706-003-5396-x
  21. Sun, D.A., Chen, B. and Wei, C.F. (2014), "Effect of fabric on mechanical behavior of marine clay", Mar. Georesour. Geotech., 32(1), 1-17. https://doi.org/10.1080/1064119X.2012.710714.
  22. Tavenas, F., Jean, P., Leblond, P. and Leroueil, S. (1983), "The permeability of natural soft clays-Part II: Permeability characteristics", Can. Geotech. J., 20(4), 645-660. https://doi.org/10.1139/t83-073.
  23. Yuan, S.Y., Liu, X.F. and Buzzi, O. (2019), "Effects of soil structure on the permeability of saturated Maryland clay", Geotechnique, 69(1), 72-78. https://doi.org/10.1680/jgeot.17.P.120.
  24. Zeng, L.L. and Cai, C. (2012), "Effect of soil structure on the hydraulic conductivity behaviour of clays", J. Fujian Univ. Tech., 10(3), 230-234 (in Chinese). https://doi.org/10.3969/j.issn.1672-4348.2012.03.006
  25. Zeng, L.L., Hong, Z.S., Cai, Y.Q. and Han, J. (2011), "Change of hydraulic conductivity during compression of undisturbed and remolded clays", Appl. Clay Sci., 51(1-2), 86-93. https://doi.org/10.1016/j.clay.2010.11.005.
  26. Zhang, X.W., Kong, L.W., Guo, A.G. and Tuo, Y.F. (2014), "Experiment study of pore distribution of strong structural clay under different consolidation pressures", Rock Soil Mech., 35(10), 2794-2800 (in Chinese).
  27. Zhao, Y., Xue, Q., Huang, F.X., Hu, X.T. and Li, J.S. (2016), "Experimental study on the microstructure and mechanical behaviors of leachate-polluted compacted clay", Environ. Earth Sci., 75(12), 1006. https://doi.org/10.1007/s12665-016-5816-x.
  28. Zhu, H., Zhang, L.M., Chen, C. and Chan, K. (2018), "Threedimensional modeling of water flow due to leakage from pressurized buried pipe", Geomech. Eng., 16(4), 423-433. https://doi.org/10.12989/gae.2018.16.4.423.

Cited by

  1. Effects of dry density and water content on compressibility and shear strength of loess vol.24, pp.5, 2019, https://doi.org/10.12989/gae.2021.24.5.419