Regulating Gas–Solid Fluidization in a Diameter-Transformed Dense Bed with Geldart A Particles

Abstract Scaling and optimizing dense fluidized bed reactors remain challenging because gas–solid interactions are complex and highly heterogeneous, most experimental observations are limited to pseudo-2D systems, and validating the numerical models used for design is difficult. This challenge is particularly pronounced for geometries with diameter-transformed structures (i.e., the bottom section of transported risers and two- and multizone fluidized bed reactors) and for Geldart A solids, whose fine particle size and cohesive behavior produce complex, chaotic flow patterns. In this work, we developed an approach that integrates cold-flow testing with CPFD simulations to regulate gas–solid fluidization in a 3D diameter-transformed dense fluidized bed reactor. We modified the Ergun-based drag model using pressure-drop measurements and implemented it in CPFD simulations. The model accurately reproduces experimental pressure drop and local solids holdup in a dense bed reactor containing 1.2 kg of Geldart A particles, demonstrating its predictive capability. We employed the validated model to evaluate hydrodynamics (i.e., void fraction, solid flux, and residence time distribution) under various operating conditions, enabling flexible application across different reactions.

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Publication Details

Journal
ACS Engineering Au
Published
2026-09-30
DOI
https://doi.org/10.1021/acsengineeringau.6c00058
Primary Topic
Granular flow and fluidized beds
Type
article
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article

Regulating Gas–Solid Fluidization in a Diameter-Transformed Dense Bed with Geldart A Particles

Pedro Castaño, Lujain Alfilfil, Diego Zapater, Jorge Gascón et al.
ACS Engineering Au
Granular flow and fluidized beds
article

Regulating Gas–Solid Fluidization in a Diameter-Transformed Dense Bed with Geldart A Particles

Pedro Castaño, Lujain Alfilfil, Diego Zapater, Jorge Gascón, Khalid Almajnouni, Isidoro Morales Osorio, Ruben Medina Flores, Mengmeng Cui, Jose Ignacio Bielma, Mohammed Hakami, Isa Al Aslani, Juan M. Colom
article en

Abstract

Abstract Scaling and optimizing dense fluidized bed reactors remain challenging because gas–solid interactions are complex and highly heterogeneous, most experimental observations are limited to pseudo-2D systems, and validating the numerical models used for design is difficult. This challenge is particularly pronounced for geometries with diameter-transformed structures (i.e., the bottom section of transported risers and two- and multizone fluidized bed reactors) and for Geldart A solids, whose fine particle size and cohesive behavior produce complex, chaotic flow patterns. In this work, we developed an approach that integrates cold-flow testing with CPFD simulations to regulate gas–solid fluidization in a 3D diameter-transformed dense fluidized bed reactor. We modified the Ergun-based drag model using pressure-drop measurements and implemented it in CPFD simulations. The model accurately reproduces experimental pressure drop and local solids holdup in a dense bed reactor containing 1.2 kg of Geldart A particles, demonstrating its predictive capability. We employed the validated model to evaluate hydrodynamics (i.e., void fraction, solid flux, and residence time distribution) under various operating conditions, enabling flexible application across different reactions.

ACS Engineering Au
Saudi Aramco (United States) (US), King Abdullah University of Science and Technology (SA)
Openalex Percentile: Top 14%
Granular flow and fluidized beds
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