Mechanisms of shear strain accumulation in laboratory experiments on sands exhibiting cyclic mobility behavior

Author:

Humire Francisco11,Ziotopoulou Katerina11

Affiliation:

1. Department of Civil and Environmental Engineering, University of California, Davis, CA, USA.

Abstract

The factors and mechanisms controlling the accumulation of shear strains of clean uniform sands exhibiting cyclic mobility behavior under level-ground conditions are examined. This phenomenon is investigated through a series of constant-volume cyclic direct simple shear (DSS) tests subjected to uniform and irregular loading conditions, and undrained cyclic element tests collected from the literature. Experimental data show that the rate of shear strain accumulation per loading cycle depends on the relative density, cyclic stress amplitude, and effective overburden stress. Mechanisms of shear strain accumulation are investigated by decoupling the shear strain developed in each loading cycle in two components: γ0, developed at near-zero effective stress, and γd, developed during dilation. Results show that γ0 mostly depends on the shear strain history, while γd depends on the cyclic stress amplitude and relative density. These dependencies of γd and γ0 are used to provide an explanation for the gradual decrease of the rate of shear strain accumulation that is observed while increasing the number of post-triggering loading cycles in tests performed on dense specimens.

Publisher

Canadian Science Publishing

Subject

Civil and Structural Engineering,Geotechnical Engineering and Engineering Geology

Reference47 articles.

1. Beaty, M., and Byrne, P.M. 1998. An effective stress model for predicting liquefaction behavior of sand. In Geotechnical earthquake engineering and soil dynamics III. ASCE Geotechnical Special Publication. Vol. 1. pp. 766–777.

2. A state parameter for sands

3. Bhatia, S.K., Schwab, J., and Ishibashi, I. 1985. Cyclic simple shear, torsional shear and triaxial - A comparative study. In Advances in the art of testing soils under cyclic conditions. Edited by V. Khosla. ASCE, New York. pp. 232–254.

4. Relating Kα to Relative State Parameter Index

5. Boulanger, R.W., and Ziotopoulou, K. 2017. PM4Sand (version 3.1): A sand plasticity model for earthquake engineering applications. Report No. UCD/CGM-17/01. Center for Geotechnical Modeling, Department of Civil and Environmental Engineering, University of California, Davis, Calif.

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