Multiscale modeling of gas-fluidized beds

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3 Citations (Scopus)

Abstract

As one important example of particle-laden flows, fluidized beds have been the subject of intense research owing to their wealth of scientifically interesting phenomena, as well as their innumerable industrial applications. This chapter presents a condensed summary of the current state of knowledge regarding the hydrodynamics of gas-fluidized bed reactors achieved with the use of the state-of-the-art numerical modeling methods, most of which are already described in previous chapters. The results are achieved by using a multiscale modeling approach, combining particle-level interactions using particle-resolved direct numerical simulations, mesoscale information of particulate flow obtained using computational fluid dynamics – discrete element method type Euler–Lagrange methods, and macroscale overall process effects analyzed using continuum models like two-fluid models with kinetic theory of granular flow. Particular emphasis is placed on studies of drag correlation, cohesive particles, non-spherical particles, and fluidization with liquid injection. At the end of this chapter, we recommend some key areas for future contributions from the perspective of numerical modeling.

Original languageEnglish
Title of host publicationModeling Approaches and Computational Methods for Particle-laden Turbulent Flows
EditorsShankar Subramaniam, S. Balachandar
PublisherElsevier
Chapter14
Pages483-536
Number of pages54
ISBN (Electronic)9780323901338
ISBN (Print)9780323901345
DOIs
Publication statusPublished - 19 Jan 2023

Keywords

  • challenges
  • cohesive forces
  • drag
  • gas-fluidized beds
  • liquid bridges
  • multiscale modeling
  • non-spherical particles

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