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Lattice Boltzmann simulation of flow past a non-spherical particle

  • Yanjun Guan
  • , Rodrigo Guadarrama-Lara
  • , Xiaodong Jia
  • , Kai Zhang*
  • , Dongsheng Wen
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

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 angle has an important impact on the pressure drag force due to the change of projected area. The simulated drag coefficient agrees well with the experimental data or empirical correlation for both spherical and non-spherical particles.

Original languageEnglish
Pages (from-to)1486-1494
Number of pages9
JournalAdvanced Powder Technology
Volume28
Issue number6
DOIs
StatePublished - Jun 2017

Keywords

  • Drag coefficient
  • Lattice Boltzmann method
  • Low-to-high Reynolds number
  • Non-spherical particle
  • Spherical particle

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