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DLVO and classical filtration theories were employed to model the interactions between particles and between particles and sand grains.
The mechanisms governing the segregation and mixing of particles are elucidated in terms of the interaction forces between particles and between particles and fluid.
The roles of various forces between particles and between particles and fluid are examined, and the origin of different flow regimes is discussed.
Heat and mass transfer from and to the particles are accounted for as well as heat transfer between particles and between particles and a surrounding gas phase including radiation.
The simulation parameters are the restitution coefficient, normal stiffness, friction coefficient between particles and between particles and the walls, and two ratios which relate the normal and tangential stiffness and damping coefficients.
To take into account the liquid bridge force between particles and between a particle and a wall, a regression expression for the liquid bridge force was developed as a function of the dimensionless liquid bridge volume and the separation distance based on numerical solutions of the Laplace Young equation.
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The mechanical interactions between particles and also between particles and the walls in granular flows are modelled by linear springs, dash-pots and friction sliders.
When dealing with stochastic problems, it is clear that one is frequently faced with lack of closure, especially in situations where interaction occurs between particles or between particles and their environment.
As a result, surface forces between the powder particles, and between particles and the wall surface play an important role in determining the flow nature of the powders, and this is an area requiring research.
Due to this organization the local stresses between the particles is high and debonding between particles and elastomer occur at low strain.
The contact forces between particles as well as between particles and walls are optimized, that is, larger fluctuations of the contact forces are exhibited periodically, mainly because the contacts are greatly damaged by vibrations, therefore, the possibility of arching is limited effectively.
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