Numerical modelling of rotating packed beds used for CO2 capture processes: A review

Author:

Singh Munendra Pal1,Alatyar Ahmed Mongy12,Berrouk Abdallah Sofiane13,Saeed Muhammad14ORCID

Affiliation:

1. Department of Mechanical Engineering Khalifa University of Science and Technology Abu Dhabi United Arab Emirates

2. Mechanical Power Engineering Department, Faculty of Engineering Tanta University Tanta Egypt

3. Center for Catalysis and Separations (CeCas) Khalifa University of Science and Technology Abu Dhabi United Arab Emirates

4. Abu Dhabi Maritime Academy Abu Dhabi United Arab Emirates

Abstract

AbstractOver the last decades, renewable and clean energy sources are being rigorously adopted along with carbon capture technologies to tackle the increasing carbon dioxide (CO2) concentration level in the environment. CO2 capture is a quintessential option for tackling global warming issues. In this context, the present paper has reviewed the process intensification equipment called a rotating packed bed (RPB), which is highly industry applicable due to high gravity (HiGee) force. This facilitates strong mass transfer characteristics, a compact design, and low energy consumption. In this review, the current research scenario of RPBs using numerical, computational fluid dynamics (CFD), and mathematical modelling, along with different machine learning approaches in the CO2 capture process, has been reviewed. The different geometry designs, hydrodynamic characteristics, performance parameters, research methods, and their effects on CO2 removal efficiency have been discussed. Furthermore, the latest experimental studies are also summarized, especially in the absorption and adsorption domain. Finally, recommendations have been given to support the RPBs in different industrial and commercial applications of CO2 removal.

Funder

Khalifa University of Science, Technology and Research

Publisher

Wiley

Subject

General Chemical Engineering

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