Technical Papers
Dec 29, 2014

Consolidation-Induced Solute Transport for Constant Rate of Strain. II: Comparison with Incremental Loading

Publication: Journal of Geotechnical and Geoenvironmental Engineering
Volume 141, Issue 4

Abstract

This paper presents a numerical investigation of one-dimensional large strain consolidation-induced solute transport for incremental loading (IL) and constant rate of strain (CRS) conditions. Solute transport accounts for advection, diffusion, dispersion, linear and nonlinear sorption, and equilibrium and nonequilibrium sorption, and is consistent with temporal and spatial variations of porosity and seepage velocity in the consolidating soil. Simulations were conducted using material properties for kaolinite clay and indicate that IL and CRS conditions produce significantly different responses during the course of consolidation, including applied stress, rate of settlement, excess pore pressure, and local strain. However, for a given set of initial and boundary conditions, final solute mass outflows and final solute concentration profiles for IL and CRS conditions were generally in close agreement, provided that total elapsed time and final average strain were matched for both loading procedures. Such agreement occurred for varying initial specimen height, initial contamination distribution, loading procedure, transport condition, and applied strain rate. Conversely, solute mass outflows were generally not in close agreement during the course of consolidation, with IL conditions producing higher mass outflow due to higher fluid outflow at the top boundary.

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Acknowledgments

Financial support for the research reported in this paper was provided by Grant No. CMMI-1001023 from the Geotechnical Engineering Program of the U.S. National Science Foundation. This support is gratefully acknowledged.

References

Alshawabkeh, A. N., Rahbar, N., Sheahan, T. C., and Tang, G. (2004). “Volume change effects on solute transport in clay under consolidation.” Proc. Geo Jordan 2004: Advances in Geotechnical Engineering with Emphasis on Dams, Highway Material, and Soil Improvement, ASCE, Reston, VA, 105–115.
Fox, P. J. (2007a). “Coupled large strain consolidation and solute transport. I: Model development.” J. Geotech. Geoenviron. Eng., 3–15.
Fox, P. J. (2007b). “Coupled large strain consolidation and solute transport. II: Model verification and simulation results.” J. Geotech. Geoenviron. Eng., 16–29.
Fox, P. J., and Lee, J. (2008). “Model for consolidation-induced solute transport with nonlinear and nonequilibrium sorption.” Int. J. Geomech., 188–198.
Lee, J., and Fox, P. J. (2009). “Investigation of consolidation-induced solute transport. II: Experimental and numerical results.” J. Geotech. Geoenviron. Eng., 1239–1253.
Peters, G. P., and Smith, D. W. (2002). “Solute transport through a deforming porous medium.” Int. J. Numer. Anal. Methods Geomech., 26(7), 683–717.
Pu, H., and Fox, P. J. (2015). “ Consolidation-induced solute transport for constant rate of strain. I: Model development and simulation results.” J. Geotech. Geoenviron. Eng., 04014127.

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Go to Journal of Geotechnical and Geoenvironmental Engineering
Journal of Geotechnical and Geoenvironmental Engineering
Volume 141Issue 4April 2015

History

Received: Jul 28, 2013
Accepted: Jul 7, 2014
Published online: Dec 29, 2014
Published in print: Apr 1, 2015
Discussion open until: May 29, 2015

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Patrick J. Fox, F.ASCE [email protected]
Professor, Dept. of Structural Engineering, Univ. of California–San Diego, La Jolla, CA 92093 (corresponding author). E-mail: [email protected]
Hefu Pu, A.M.ASCE [email protected]
Assistant Professor, Dept. of Civil, Architectural, and Environmental Engineering, Missouri Univ. of Science and Technology, Rolla, MO 65409; formerly, Graduate Resident Assistant, Dept. of Structural Engineering, Univ. of California–San Diego, La Jolla, CA 92093. E-mail: [email protected]

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