Convection related phenomena in granular dynamics simulations of vibrated beds
Document Type
Article
Publication Date
1-1-1997
Abstract
Three-dimensional discrete element simulations are carried out to investigate the behavior of a shallow bed of inelastic, frictional spheres (of uniform diameter d), which are energized by vertical sinusoidal oscillations of a plane floor at amplitude a and frequency ω=2πf. We investigate the long-term and instantaneous velocity fields as well as the evolution of the pressure tensor. Results show that the onset of convection reported in the literature is not only determined by the floor acceleration, but also the ratio a/d. In a wide bed (L/d∼100) narrow persistent vortices appear near vertical sidewalks, while no distinct pattern is found within the central region. A large sphere within the bed is convected upward to the surface and either "segregates" itself from the bulk, or becomes reentrained, depending on the width of the downward velocity field near the wall relative to the sphere size. An inspection of the bed microstructure reveals internal vortex-like cells spanning its width giving rise to arching observed in recent experiments and other simulations. Computations of the potential constituent of the pressure tensor revealed high values in collision-dominated regions of the bed and a trend that repeated every two oscillations of the floor. © 1997 American Institute of Physics.
Identifier
0000444581 (Scopus)
Publication Title
Physics of Fluids
External Full Text Location
https://doi.org/10.1063/1.869499
ISSN
10706631
First Page
3615
Last Page
3624
Issue
12
Volume
9
Recommended Citation
    Lan, Yidan and Rosato, Anthony D., "Convection related phenomena in granular dynamics simulations of vibrated beds" (1997). Faculty Publications.  16839.
    
    
    
        https://digitalcommons.njit.edu/fac_pubs/16839
    
 
				 
					