Fluidization behavior of stirred gas–solid fluidized beds: A combined X-ray and CFD–DEM–IBM study

P.C. van der Sande*, M.J.A. de Munck, K. Wu, D.R. Rieder, D.E.A. van den Eertwegh, E.C. Wagner, G.M.H. Meesters, E.A.J.F. Peters, J.A.M. Kuipers, J.R. van Ommen*

*Corresponding author for this work

Research output: Contribution to journalArticleScientificpeer-review

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Abstract

Stirred gas–solid fluidized bed reactors are commercially employed in polyolefin manufacturing, but the complex gas–solid contacting dynamics pose challenges in design, scale-up, and operation. In this study, the influence of agitation on the fluidization performance of Geldart B particles was investigated experimentally by X-ray imaging and pressure drop measurements and numerically by Computational Fluid Dynamics (CFD) - Discrete Element Method (DEM) - Immersed Boundary Method (IBM). The experimentally obtained minimum fluidization curve and time-averaged pressure drop show good qualitative agreement with the simulation results. Visual observations underscore that an increase in the angular velocity of the agitator results in reduced bubble size and improved bed homogeneity, as further evidenced by reduced pressure fluctuations. Furthermore, the simulations reveal that while the impeller enhances solids agitation, a proper design study is imperative, considering that static immersed bodies, such as the stirrer shaft, can adversely impact solids motion.
Original languageEnglish
Article number155944
Number of pages11
JournalChemical Engineering Journal
Volume499
DOIs
Publication statusPublished - 2024

Keywords

  • Agitation
  • CFD–DEM–IBM
  • Fluidized bed
  • Validation
  • VSBR
  • X-ray imaging

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