LAPSE:2023.4402v1
Published Article

LAPSE:2023.4402v1
Comprehensive Optimization of the Dispersion of Mixing Particles in an Inert-Particle Spouted-Bed Reactor (IPSBR) System
February 23, 2023
Abstract
Effective gas dispersion and liquid mixing are significant parameters in the design of an inert-particle spouted-bed reactor (IPSBR) system. Solid particles can be used to ensure good mixing and an efficient rate of mass and heat transfer between the gas and liquid. In this study, computational fluid dynamics (CFD) coupled with the discrete phase model (DPM) were developed to investigate the effect of the feed gas velocity (0.5−1.5 m/s), orifice diameter (0.001−0.005 m), gas head (0.15−0.35 m), particle diameter (0.009−0.0225 m), and mixing-particle-to-reactor-volume fraction (2.0−10.0 vol.%) on the solid mass concentration, average solid velocity, and average solid volume fraction in the upper, middle, and conical regions of the reactor. Statistical analysis was performed using a second-order response surface methodology (RSM) with central composite design (CCD) to obtain the optimal operating conditions. Selected parameters were optimized to maximize the responses in the middle and upper regions, and minimize them in the conical region. Such conditions produced a high interfacial area and fewer dead zones owing to good particle dispersion. The optimal process variables were feed gas velocity of 1.5 m/s, orifice diameter of 0.001 m, gas head of 0.2025 m, a particle diameter of 0.01 m, and a particle load of 0.02 kg. The minimum average air velocity and maximum air volume fraction were observed under the same operating conditions. This confirmed the novelty of the reactor, which could work at a high feed gas velocity while maintaining a high residence time and gas volume fraction.
Effective gas dispersion and liquid mixing are significant parameters in the design of an inert-particle spouted-bed reactor (IPSBR) system. Solid particles can be used to ensure good mixing and an efficient rate of mass and heat transfer between the gas and liquid. In this study, computational fluid dynamics (CFD) coupled with the discrete phase model (DPM) were developed to investigate the effect of the feed gas velocity (0.5−1.5 m/s), orifice diameter (0.001−0.005 m), gas head (0.15−0.35 m), particle diameter (0.009−0.0225 m), and mixing-particle-to-reactor-volume fraction (2.0−10.0 vol.%) on the solid mass concentration, average solid velocity, and average solid volume fraction in the upper, middle, and conical regions of the reactor. Statistical analysis was performed using a second-order response surface methodology (RSM) with central composite design (CCD) to obtain the optimal operating conditions. Selected parameters were optimized to maximize the responses in the middle and upper regions, and minimize them in the conical region. Such conditions produced a high interfacial area and fewer dead zones owing to good particle dispersion. The optimal process variables were feed gas velocity of 1.5 m/s, orifice diameter of 0.001 m, gas head of 0.2025 m, a particle diameter of 0.01 m, and a particle load of 0.02 kg. The minimum average air velocity and maximum air volume fraction were observed under the same operating conditions. This confirmed the novelty of the reactor, which could work at a high feed gas velocity while maintaining a high residence time and gas volume fraction.
Record ID
Keywords
CFD-DPM simulation, gas–liquid reactor, hydrodynamics, inert mixing particles, particle dispersion, response surface methodology
Subject
Suggested Citation
Mohammad AF, Mourad AAHI, Al-Marzouqi AH, El-Naas MH, Bruggen BVD, Al-Marzouqi MH, Alnaimat F, Al Musharfy M. Comprehensive Optimization of the Dispersion of Mixing Particles in an Inert-Particle Spouted-Bed Reactor (IPSBR) System. (2023). LAPSE:2023.4402v1
Author Affiliations
Mohammad AF: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates; Chemical Engineering Department, KU Leuven, B-3001 Leuven, Belgium
Mourad AAHI: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates; Academic Support Department, Abu Dhabi Polytechnic, Institute of Applied Technology, Abu Dhabi 111499, United Arab Emirates
Al-Marzouqi AH: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates [ORCID]
El-Naas MH: Gas Processing Center, College of Engineering, Qatar University, Doha 2173, Qatar [ORCID]
Bruggen BVD: Chemical Engineering Department, KU Leuven, B-3001 Leuven, Belgium
Al-Marzouqi MH: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates
Alnaimat F: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates [ORCID]
Al Musharfy M: ADNOC Refining Research Center, Abu Dhabi 898, United Arab Emirates
Mourad AAHI: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates; Academic Support Department, Abu Dhabi Polytechnic, Institute of Applied Technology, Abu Dhabi 111499, United Arab Emirates
Al-Marzouqi AH: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates [ORCID]
El-Naas MH: Gas Processing Center, College of Engineering, Qatar University, Doha 2173, Qatar [ORCID]
Bruggen BVD: Chemical Engineering Department, KU Leuven, B-3001 Leuven, Belgium
Al-Marzouqi MH: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates
Alnaimat F: College of Engineering, UAE University, Al Ain 15551, United Arab Emirates [ORCID]
Al Musharfy M: ADNOC Refining Research Center, Abu Dhabi 898, United Arab Emirates
Journal Name
Processes
Volume
9
Issue
11
First Page
1921
Year
2021
Publication Date
2021-10-27
ISSN
2227-9717
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Original Submission
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PII: pr9111921, Publication Type: Journal Article
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LAPSE:2023.4402v1
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https://doi.org/10.3390/pr9111921
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Feb 23, 2023
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