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 language | English |
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Title of host publication | Modeling Approaches and Computational Methods for Particle-laden Turbulent Flows |
Editors | Shankar Subramaniam, S. Balachandar |
Publisher | Elsevier |
Chapter | 14 |
Pages | 483-536 |
Number of pages | 54 |
ISBN (Electronic) | 9780323901338 |
ISBN (Print) | 9780323901345 |
DOIs | |
Publication status | Published - 19 Jan 2023 |
Keywords
- challenges
- cohesive forces
- drag
- gas-fluidized beds
- liquid bridges
- multiscale modeling
- non-spherical particles