Technical Papers
Apr 21, 2015

Undrained Strength of Compacted Clay under Principal Stress Reorientation

Publication: Journal of Geotechnical and Geoenvironmental Engineering
Volume 141, Issue 8

Abstract

Consolidated-undrained tests on saturated compacted clays are used to provide strengths for design scenarios such as rapid drawdown, rapid flood, and earthquake loading of dams and levees. Geotechnical engineers have long recognized the influence of stress path, particularly principal stress reorientation from consolidation to failure, on the undrained strength of clay. While stress reorientation effects have been explored for undisturbed soils, their influence on the strength of compacted clay has not been examined in detail. The results of triaxial tests with stress reorientation and direct simple shear tests on a compacted clay are presented and compared to results from isotropically consolidated triaxial compression (ICU-TC) tests. Triaxial extension (TE) tests are shown to impose a stress system very dissimilar to the plane strain field conditions. TE tests also have problems with necking. The undrained strengths from TE tests were 25–55% lower than those measured in ICU-TC. In contrast, triaxial compression tests that incorporate a 90° stress reorientation resulted in only a slight reduction in strength from ICU-TC. Compacted clays were found to be difficult to test in conventional direct simple shear equipment because of their stiffness and initially unsaturated condition. Further improvement of DSS testing techniques is needed before these tests can be used for compacted clays.

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Acknowledgments

This work was funded by the Virginia Tech Institute for Critical Technology and Applied Science, the Virginia Tech Center for Geotechnical Practice and Research, and the Charles Edward Via Department of Civil and Environmental Engineering.

References

Andersen, K. H., and Stenhamar, P. (1982). “Static plate load tests on overconsolidated clay.” J. Geotech. Eng. Div., 108(GT7), 918–934.
ASTM. (2007). “Standard test method for consolidated undrained direct simple shear testing of cohesive soils.”, West Conshohocken, PA.
ASTM. (2012). “Standard test method for laboratory compaction characteristics of soil using standard effort.”, West Conshohocken, PA.
Bhaskaran, R. (1974). “Strength anisotropy in kaolinite clay.” Geotechnique, 24(4), 674–678.
Bishop, A. W. (1966). “The strength of soils as engineering materials.” Geotechnique, 16(2), 91–130.
Bjerrum, L., and Landva, A. (1966). “Direct simple-shear tests on a Norwegian quick clay.” Geotechnique, 16(1), 1–20.
Broms, B. B., and Casbarian, A. O. (1965). “Effects of rotation of the principal stress axes and of the intermediate principal stress on the shear strength.” Proc., 6th Int. Conf. of Soil Mechanics and Foundation Engineering, Vol. 1, Univ. of Toronto Press, Toronto, 179–183.
Castellanos, B. (2014). Use and measurement of fully softened shear strength, Ph.D. dissertation, Virginia Tech, Blacksburg, VA.
DiBernardo, A., and Lovell, C. W. (1979). “The effect of laboratory compaction on the compressibility of compacted highly plastic clay: Interim report.”, JHRP, INDOT and Purdue Univ., West Lafayette, IN.
Duncan, J. M., and Seed, H. B. (1965). “The effect of anisotropy and reorientation of principal stresses on the shear strength of saturated clay.”, Univ. of California, Berkeley, Berkeley, CA.
Duncan, J. M., and Seed, H. B. (1966). “Strength variation along failure surfaces in clay.” J. Soil Mech. Found. Div., 92(SM6), 81–104.
Dyvik, R., Berre, R., Lacasse, S., and Raadim, B. (1987). “Comparison of truly undrained and constant volume direct simple shear tests.” Geotechnique, 37(1), 3–10.
Dyvik, R., Lacasse, S., and Martin, R. (1985). “Coefficient of lateral stress from oedometer cell.” Proc., 11th Int. Conf. Soil Mechanics and Foundation Engineering, Vol. 2, A. A. Balkema, Rotterdam, Netherlands, 1003–1006.
Hansen, J. B., and Gibson, R. E. (1949). “Undrained shear strengths of anisotropically consolidated clays.” Geotechnique, 1(3), 189–200.
Henkel, D. J. (1960). “The relationships between the effective stresses and water content in saturated clays.” Geotechnique, 10(2), 41–54.
Henkel, D. J., and Sowa, V. A. (1963). “The influence of stress history on stress paths in undrained triaxial tests on clay.”, ASTM, West Conshohocken, PA, 280–291.
Johnson, J. M., and Lovell, C. W. (1979). “The effect of laboratory compaction on the shear behavior of a highly plastic clay after saturation and consolidation: Interim report.”, JHRP, INDOT and Purdue Univ., West Lafayette, IN.
Kirkpatrick, W. M., and Rennie, I. A. (1972). “Directional properties of consolidated kaolin.” Geotechnique, 22(1), 166–169.
Ladd, C. C., and DeGroot, D. J. (2003). “Recommended practice for soft ground site characterization.” Proc., 12th Panamerican Conf. Soil Mechanics and Foundation Engineering, Massachusetts Institute of Technology, Cambridge, MA.
Ladd, C. C., and Edgers, L. (1972). “Consolidated-Undrained direct simple shear tests on saturated clays.”, Dept. of Civil Engineering, Massachusetts Institute of Technology, Cambridge, MA.
Ladd, C. C., Foott, R., Ishihara, K., Schlosser, F., and Poulos, H. G. (1977). “Stress-deformation and strength characteristics.” Proc., 9th Int. Conf. Soil Mechanics and Foundation Engineering, Vol. 2, Japanese Society of Soil Mechanics and Foundation Engineering, Tokyo, 421–494.
Lade, P. V., Yamamuro, J. A., and Skyers, B. D. (1996). “Effects of shear band formation in triaxial extension tests.” Geotech. Test. J., 19(4), 398–410.
Lambe, T. W., and Whitman, R. V. (1969). Soil mechanics, Wiley, New York.
Mayne, P. W. (1985). “A review of undrained strength in direct simple shear.” Soils Found., 25(3), 64–72.
Rutledge, P. D. (1947). “Cooperative triaxial shear research program.” Progress Rep. Soil Mechanics Fact Finding Survey, USACE WES, Vicksburg, MS.
Seed, H. B., Mitchell, J. K., and Chan, C. K. (1960). “The strength of compacted cohesive soils.” Proc., Research Conf. on Shear Strength of Cohesive Soils, ASCE, Reston, VA, 877–964.
Shibata, T., and Karube, D. (1965). “Influence of the variation of the intermediate principal stress on the mechanical properties of normally consolidated clays.” Proc., 6th Int. Conf. Soil Mechanics and Foundation Engineering, Vol. 1, Univ. of Toronto Press, Toronto, 359–363.
VandenBerge, D. R., Brandon, T. L., and Duncan, J. M. (2014a). “Triaxial tests on compacted clays for consolidated-undrained conditions.” Geotech. Test J., 37(4), 1–13.
VandenBerge, D. R., Duncan, J. M., and Brandon, T. L. (2014b). Rapid drawdown analysis using the finite element method, Virginia Tech, Blacksburg, VA.
Whitman, R. V., Ladd, C. C., and DaCruz, P. (1960). “Discussion to session 3.” Proc., Research Conf. on Shear Strength of Cohesive Soils, ASCE, Reston, VA, 1049–1056.
Wu, W., and Kolymbas, D. (1991). “On some issues in triaxial extension tests.” Geotech. Test. J., 14(3), 276–287.

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Published In

Go to Journal of Geotechnical and Geoenvironmental Engineering
Journal of Geotechnical and Geoenvironmental Engineering
Volume 141Issue 8August 2015

History

Received: Jul 30, 2014
Accepted: Mar 10, 2015
Published online: Apr 21, 2015
Published in print: Aug 1, 2015
Discussion open until: Sep 21, 2015

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Authors

Affiliations

Daniel R. VandenBerge, M.ASCE [email protected]
P.E.
Postdoctoral Associate, Virginia Tech, 19 Patton Hall, Blacksburg, VA 2406 (corresponding author). E-mail: [email protected]
J. Michael Duncan, Dist.M.ASCE [email protected]
P.E.
University Distinguished Professor Emeritus, Virginia Tech, 120 Patton Hall, Blacksburg, VA 24061. E-mail: [email protected]
Thomas L. Brandon, M.ASCE [email protected]
P.E.
Associate Professor, Virginia Tech, 22 Patton Hall, Blacksburg, VA 24061. E-mail: [email protected]

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