Lattice Boltzmann method was used to predict the fluid-particle interaction for arbitrary shaped particles. In order to validate the reliability of the present approach, simulation of flow past a single stationary spherical, cylindrical or cubic particle is conducted in a wide range of Reynolds number (0.1 < Rep < 3000). The results indicate that the drag coefficient is closely related to the particle shape, especially at high Reynolds numbers. The voxel resolution of spherical particle plays a key role in accurately predicting the drag coefficient at high Reynolds numbers. For non-spherical particles, the drag coefficient is more influenced by the particle morphology at moderate or high Reynolds numbers than at low ones. The inclination an...
We report on lattice-Boltzmann simulations of slow fluid flow past mono- and bidisperse random array...
Drag coefficients of irregularly shaped particles, constructed from spheres, were measured in lattic...
Drag coefficients of irregularly shaped particles, constructed from spheres, were measured in lattic...
The paper aims to improve existing correlations for the drag coefficient and averaged Nusselt number...
Accurate direct numerical simulations are performed to determine the drag, lift and torque coefficie...
The paper presents results of numerical calculations of drag coefficientsof large sphericalsolidpart...
The interaction of spherical solid particles with turbulent eddies in a 3-D turbulent channel flow w...
Particle-laden flows are important owing to their relevance to many engineering devices such as coal...
In this paper, the coupled lattice Boltzmann simulation scheme with second Newton’s law is proposed ...
Fluid–solid drag force correlations, such as the Ergun relation, are widely used in many areas of ch...
We report on lattice-Boltzmann simulations of slow fluid flow past mono- and bidisperse random array...
A detailed knowledge of the influence of a particle’s shape on its settling behavior is useful for t...
We report on lattice-Boltzmann simulations of slow fluid flow past mono- and bidisperse random array...
Drag coefficients of irregularly shaped particles, constructed from spheres, were measured in lattic...
Drag coefficients of irregularly shaped particles, constructed from spheres, were measured in lattic...
The paper aims to improve existing correlations for the drag coefficient and averaged Nusselt number...
Accurate direct numerical simulations are performed to determine the drag, lift and torque coefficie...
The paper presents results of numerical calculations of drag coefficientsof large sphericalsolidpart...
The interaction of spherical solid particles with turbulent eddies in a 3-D turbulent channel flow w...
Particle-laden flows are important owing to their relevance to many engineering devices such as coal...
In this paper, the coupled lattice Boltzmann simulation scheme with second Newton’s law is proposed ...
Fluid–solid drag force correlations, such as the Ergun relation, are widely used in many areas of ch...
We report on lattice-Boltzmann simulations of slow fluid flow past mono- and bidisperse random array...
A detailed knowledge of the influence of a particle’s shape on its settling behavior is useful for t...
We report on lattice-Boltzmann simulations of slow fluid flow past mono- and bidisperse random array...
Drag coefficients of irregularly shaped particles, constructed from spheres, were measured in lattic...
Drag coefficients of irregularly shaped particles, constructed from spheres, were measured in lattic...