Role of gravity or confining pressure and contact stiffness in granular rheology
arXiv:1412.0874 · doi:10.1088/1367-2630/17/4/043028
Abstract
The steady shear rheology of granular materials is investigated in slow quasi-static states and inertial flows. The effect of the gravity field and contact stiffness, which are conventionally trivialized is the focus of this study. Series of Discrete Element Method simulations are performed on a weakly frictional granular assembly in a split-bottom geometry considering various gravity fields and contact stiffnesses. While traditionally the inertial number, i.e., the ratio of stress to strain-rate timescales describes the flow rheology, we find that a second dimensionless number, the ratio of softness and stress timescales, must also be included to characterize the bulk flow behavior. For slow, quasi-static flows, the density increases while the macroscopic friction decreases with respective increase in particle softness and gravity. This trend is added to the rheology and can be traced back to the anisotropy in the contact network, displaying a linear correlation between macroscopic friction and deviatoric fabric in the steady state. Interestingly, the linear relation holds when the external rotation rate is increased for a given gravity field and contact stiffness.
27 pages, 15 figures
References in corpus (6)
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Cited by in corpus (6)
- Stress-activated Constraints in Dense Suspension Rheology
- Flow and rheology of frictional elongated grains
- Investigating the Nature of Discontinuous Shear Thickening: Beyond a Mean-Field Description
- Gravity Governs Shear Localization in Confined Dense Granular Flows
- Strain localization in planar shear of granular media: the role of porosity and boundary conditions
- Evolution of shear zones in granular packings under pressure