Experimental Study on the Gas–Solid Flow Mechanism with Variable Particle Property in a Multistage Fluidized Bed Riser

Abstract Variable-diameter CFBs have been receiving increasing attention due to its synergistic regulation of solid holdup, contact efficiency, and residence time. Nevertheless, the influence of particle property on the complex gas–solid hydrodynamics remains poorly understood. This work experimentally investigates the effect of particle size on gas–solid flow in a three-dimensional multistage riser using instantaneous solid concentration measurements and multiscale signal analysis. Results show that the large particle intensifies flow fluctuations in the enlarged segment and increases axial nonuniformity of particle distribution. The periodic motion of the large particle is more vigorous. Mesoscale agglomerates dominate the gas–solid flow in the enlarged segment regardless of particle size, but the energy distribution across scales varies distinctly between the straight and enlarged sections. The particle concentration positively correlates with the impact of particle size on flow behavior. Overall, the effects of particle size on gas–solid flow tend to attenuate toward the center region and the upper part in the riser segment.

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Publication Details

Journal
Industrial & Engineering Chemistry Research
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.iecr.6c03748
Primary Topic
Granular flow and fluidized beds
Type
article
Field-Weighted Citation Impact
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article

Experimental Study on the Gas–Solid Flow Mechanism with Variable Particle Property in a Multistage Fluidized Bed Riser

Yefei Xia, Yan Bing He, Gongpeng Wu, Zhengxi Zhang et al.
Industrial & Engineering Chemistry Research
Granular flow and fluidized beds
article

Experimental Study on the Gas–Solid Flow Mechanism with Variable Particle Property in a Multistage Fluidized Bed Riser

Yefei Xia, Yan Bing He, Gongpeng Wu, Zhengxi Zhang, Chengcai Wang, Wenhe Li, Xuejun Yu
article en

Abstract

Abstract Variable-diameter CFBs have been receiving increasing attention due to its synergistic regulation of solid holdup, contact efficiency, and residence time. Nevertheless, the influence of particle property on the complex gas–solid hydrodynamics remains poorly understood. This work experimentally investigates the effect of particle size on gas–solid flow in a three-dimensional multistage riser using instantaneous solid concentration measurements and multiscale signal analysis. Results show that the large particle intensifies flow fluctuations in the enlarged segment and increases axial nonuniformity of particle distribution. The periodic motion of the large particle is more vigorous. Mesoscale agglomerates dominate the gas–solid flow in the enlarged segment regardless of particle size, but the energy distribution across scales varies distinctly between the straight and enlarged sections. The particle concentration positively correlates with the impact of particle size on flow behavior. Overall, the effects of particle size on gas–solid flow tend to attenuate toward the center region and the upper part in the riser segment.

Industrial & Engineering Chemistry Research
Qingdao University (CN), Qingdao University of Science and Technology (CN), Qinghai New Energy (China) (CN)
Openalex Percentile: Top 18%
Granular flow and fluidized beds
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Experimental Study on the Gas–Solid Flow Mechanism with Variable Particle Property in a Multistage Fluidized Bed Riser — Yefei Xia, Yan Bing He, et al. · Industrial & Engineering Chemistry Research (2026) | TGRS Research Map | TGRS