We model the Brazil-nut effect (BNE) by hypothesizing that granules form clusters that fragment and aggregate. This provides a heterogeneous medium in which the immersed intruder particle rises (BNE) or sinks (reverse BNE)according to relative convection currents and buoyant and drag forces. A simple relationship proposed for viscous drag in terms of the vibrational intensity and the particle to grain density ratio allows simulation of published experimental data for rise and sink times as functions of particle radius, initial depth of the particle, and particle-grain density ratio. The proposed model correctly describes the experimentally observed maximum in risetime
Modeling and simulation of segregation phenomena in granular flows are investigated. Computational m...
Modeling and simulation of segregation phenomena in granular flows are investigated. Computational m...
The vibration-induced segregation (e.g., rising of one large intruder - so called Brazil Nut Effect ...
21 pages, 5 figuresWe present a hydrodynamic theoretical model for "Brazil nut" size segregation in ...
The Brazil nut effect is a classic phenomenon in which larger objects typically migrate to the top o...
It has been recently reported that a granular mixture in which grains differ in their restitution co...
Granular materials such as sand and grains, are large conglomerations of discrete macro-scopic parti...
Segregation of granular materials under vibration or flow conditions such as the Brazil nut effect h...
When a granular mixture is subject to strong perturbations the system becomes spatially non–uniform ...
This study experimentally investigates the effect of a bumpy base on the Brazil-nut phenomenon in a ...
A two dimensional bi-disperse vibrofluidized granular mixture is studied in the rapid flow regime, w...
The purpose of this experiment was to propose a comprehensive model to explain the mechanisms behin...
Granular matter subject to vibration is found to display a wide range of interesting phenomena, and ...
Open AccessThe Brazil nut effect is the phenomenon in which a large intruder particle immersed in a ...
This paper investigates the motion of particles between two co-axial cylinders which are subjected t...
Modeling and simulation of segregation phenomena in granular flows are investigated. Computational m...
Modeling and simulation of segregation phenomena in granular flows are investigated. Computational m...
The vibration-induced segregation (e.g., rising of one large intruder - so called Brazil Nut Effect ...
21 pages, 5 figuresWe present a hydrodynamic theoretical model for "Brazil nut" size segregation in ...
The Brazil nut effect is a classic phenomenon in which larger objects typically migrate to the top o...
It has been recently reported that a granular mixture in which grains differ in their restitution co...
Granular materials such as sand and grains, are large conglomerations of discrete macro-scopic parti...
Segregation of granular materials under vibration or flow conditions such as the Brazil nut effect h...
When a granular mixture is subject to strong perturbations the system becomes spatially non–uniform ...
This study experimentally investigates the effect of a bumpy base on the Brazil-nut phenomenon in a ...
A two dimensional bi-disperse vibrofluidized granular mixture is studied in the rapid flow regime, w...
The purpose of this experiment was to propose a comprehensive model to explain the mechanisms behin...
Granular matter subject to vibration is found to display a wide range of interesting phenomena, and ...
Open AccessThe Brazil nut effect is the phenomenon in which a large intruder particle immersed in a ...
This paper investigates the motion of particles between two co-axial cylinders which are subjected t...
Modeling and simulation of segregation phenomena in granular flows are investigated. Computational m...
Modeling and simulation of segregation phenomena in granular flows are investigated. Computational m...
The vibration-induced segregation (e.g., rising of one large intruder - so called Brazil Nut Effect ...