Vortices enhance diffusion in dense granular flows
arXiv:1705.08573 · doi:10.1103/PhysRevLett.119.178001
Abstract
This Letter introduces unexpected diffusion properties in dense granular flows, and shows that they result from the development of partially jammed clusters of grains, or granular vortices. Transverse diffusion coefficients and average vortex sizes are systematically measured in simulated plane shear flows at differing internal numbers revealing (i) a strong deviation from the expected scaling involving the grain size and shear rate and (ii) an increase in average vortex size at low , following but limited by the system size. A general scaling is introduced that captures all the measurements and highlights the key role of vortex size. This leads to establishing a scaling for the diffusivity in dense granular flow as involving the geometric average of shear time and inertial time as the relevant time scale. Analysis of grain trajectories further evidence that this diffusion process arises from a vortex-driven random walk.
5 pages, 4 figures, 1 supplemental section
References in corpus (3)
Cited by in corpus (7)
- Shear-induced diffusion in non-local granular flows
- Critical scaling of diffusion coefficients and size of rigid clusters of soft athermal particles under shear
- Inertial Force Transmission in Dense Granular Flows
- Mobility in immersed granular materials upon cyclic loading
- Enhanced collective vibrations in granular materials
- Shear flow of frictional spheroids: Comparison between elongated and flattened particles
- Relaxation dynamics and long-time tails explain shear-induced diffusion of soft athermal particles near jamming