Effect of viscosity on the avalanche dynamics and flow transition of wet granular matter

被引:0
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作者
Kasper, Jens H. [1 ]
Magnanimo, Vanessa [2 ]
de Jong, Sjoerd D.M. [1 ]
Beek, Arjan [1 ]
Jarray, Ahmed [1 ]
机构
[1] Multi-Scale Mechanics (MSM), Thermal and Fluid Engineering, Faculty of Engineering Technology, University of Twente, P.O. Box 217, Enschede,7500 AE, Netherlands
[2] Construction Management and Engineering (CME), Faculty of Engineering Technology, University of Twente, P.O. Box 217, Enschede,7500 AE, Netherlands
来源
Particuology | 2021年 / 59卷
关键词
Granular materials - Particles (particulate matter) - Viscosity of liquids - Particle size - Liquids - Rigid structures - Confined flow;
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学科分类号
摘要
The dynamic behaviour of granular flows is important in geo-mechanics and industrial applications, yet poorly understood. We studied the effects of liquid viscosity and particle size on the dynamics of wet granular material flowing in a slowly rotating drum, in order to detect the transition from the avalanching to the continuous flow regime. A discrete element method (DEM) model, in which contact forces and cohesive forces were considered, was employed to simulate this flow behaviour. The model was validated experimentally, using glass beads in a wooden drum and water–glycerol mixtures to tune the liquid viscosity. The DEM simulations showed comparable results to the experiments in terms of average slope angle and avalanche amplitude. We observed that the avalanche amplitude, flow layer velocity and granular temperature decrease as the liquid viscosity increases. This effect is more pronounced for smaller sized particles. The increase in viscous forces causes the flowing particles to behave as a bulk, pushing the free surface towards a convex shape. In addition, avalanches become less pronounced and the granular flow transitions from the avalanching regime to the continuous regime. The avalanching flow regime is marked by intermittent rigid body movement of the particulate bed and near-zero drops in the granular temperature, while no rigid body movement of the bed occurs in the continuous flow regime. We identified the avalanching-continuous flow transition region as a function of a dimensionless granular Galileo number. © 2020 Chinese Society of Particuology and Institute of Process Engineering, Chinese Academy of Sciences
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页码:64 / 75
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