Shear strength properties of wet granular materials

Vincent Richefeu, Moulay Saïd El Youssoufi, and Farhang Radjaï
Phys. Rev. E 73, 051304 – Published 10 May 2006

Abstract

We investigate shear strength properties of wet granular materials in the pendular state (i.e., the state where the liquid phase is discontinuous) as a function of water content. Sand and glass beads were wetted and tested in a direct shear cell and under various confining pressures. In parallel, we carried out three-dimensional molecular dynamics simulations by using an explicit equation expressing capillary force as a function of interparticle distance, water bridge volume, and surface tension. We show that, due to the peculiar features of capillary interactions, the major influence of water content over the shear strength stems from the distribution of liquid bonds. This property results in shear strength saturation as a function of water content. We arrive at the same conclusion by a microscopic analysis of the shear strength. We propose a model that accounts for the capillary force, the granular texture, and particle size polydispersity. We find fairly good agreement of the theoretical estimate of the shear strength with both experimental data and simulations. From numerical data, we analyze the connectivity and anisotropy of different classes of liquid bonds according to the sign and level of the normal force as well as the bond direction. We find that weak compressive bonds are almost isotropically distributed whereas strong compressive and tensile bonds have a pronounced anisotropy. The probability distribution function of normal forces is exponentially decreasing for strong compressive bonds, a decreasing power-law function over nearly one decade for weak compressive bonds, and an increasing linear function in the range of tensile bonds. These features suggest that different bond classes do not play the same role with respect to the shear strength.

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  • Received 17 November 2005

DOI:https://doi.org/10.1103/PhysRevE.73.051304

©2006 American Physical Society

Authors & Affiliations

Vincent Richefeu*, Moulay Saïd El Youssoufi, and Farhang Radjaï

  • Laboratoire de Mécanique et Génie Civil UMR CNRS 5508, Cc. 048, Université Montpellier 2, Place Eugène Bataillon, 34095 Montpellier Cedex 5, France

  • *Electronic address: richefeu@lmgc.univ-montp2.fr

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Issue

Vol. 73, Iss. 5 — May 2006

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