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This article describes a new set of scale-up parameters of spouted beds derived from solid stress analyses.
Under steady state, cake compaction and percolation depend on the cake solid stress, which in turn depends on the G-force and the concentrate thickness.
In the dense flow regime, on the other hand, particles interact via enduring contacts and the solid stress can be deduced from soil mechanics theories.
With boundary conditions relying on the macroscopic solid displacement and fluid pressure, the homogenized solid stress and fluid displacement are obtained based on energy consistency.
The viscosity and the previously measured solid stress modulus were used in a multiphase CFD code to study the behavior of explosive dissemination of mixtures of nanoparticles and micron size particles.
For batch thickening, the initial and critical concentration and the height of the initial suspension have to be entered together with the parameters of the flux density function and the effective solid stress.
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The gas and solid dynamics has been calculated using the commercial computational fluid dynamics (CFD) software package ANSYS/Fluent and an Eulerian Eulerian model (EEM) with kinetic theory of granular flow used to calculate solid stresses.
Subsequently, the effects of some important model parameters including solid stresses, wall corrections and filter size on the flow behaviors were also investigated numerically.
In the extended full method, the well-known Helmholtz decomposition is used to obtain the displacement fields, solid stresses and the fluid pressure.
This model incorporates a k ε turbulence model for gas phase, a kp turbulence model and a kinetic theory description of solid stresses characterized by granular temperature for solid phase.
For chondrocytes in the superficial zone, increasing the cell's initial aspect ratio (length/height) increased the deformation and solid stresses of the chondrocyte and pericellular matrix (PCM) during the loading phase; for chondrocytes in the deep zone the effect of the cell shape on the solid microenvironment was time and variable dependent.
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