Viscometric flow of dense granular materials under controlled pressure and shear stress
Ishan Srivastava, Leonardo E. Silbert, Gary S. Grest, Jeremy B., Lechman

TL;DR
This paper investigates the steady flow behavior of dense granular materials under controlled pressure and shear stress using simulations, revealing normal stress differences and proposing a comprehensive rheological model.
Contribution
It introduces a second-order rheological model capturing normal stress differences in dense granular flows under various conditions.
Findings
Normal stress differences are negative in inertial flows.
First normal stress difference switches from negative to positive in quasi-static flow.
The proposed model accurately describes steady dense granular flows.
Abstract
This study examines the flow of dense granular materials under external shear stress and pressure using discrete element method simulations. In this method, the material is allowed to strain along all periodic directions and adapt its solid volume fraction in response to an imbalance between the internal state of stress and the external applied stress. By systematically varying the external shear stress and pressure, the steady rheological response is simulated for: (1) rate-independent quasi-static flow; and (2) rate-dependent inertial flow. The simulated flow is viscometric with non-negligible first and second normal stress differences. While both normal stress differences are negative in inertial flows, the first normal stress difference switches from negative to slightly positive, and second normal stress difference tends to zero in quasi-static flows. The first normal stress…
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