LAPSE:2023.5090
Published Article

LAPSE:2023.5090
CFD Study of the Numbering up of Membrane Microreactors for CO2 Capture
February 23, 2023
Abstract
Carbon dioxide (CO2) is one of the major atmospheric greenhouse gases (GHG). The continuous increase of CO2 concentration and its long atmospheric lifetime may cause long-term negative effects on the climate. It is important to develop technologies to capture and minimize those emissions into the atmosphere. The objective of this work is to design and study theoretically and experimentally a numbering-up/scale-out membrane microreactor in order to be used as a capture system. The main aim of the work is to obtain an even flow distribution at each plate of the reactor. Nearly uniform flow distribution was achieved at each layer of the numbering-up microreactor according to the carried-out CFD models. The maximum difference between the average velocities was less than 6% for both gas and liquid flows. To obtain better flow distribution into the microreactor, the radius of the inlet/outlet tube was optimized. Results from CFD and experimental simulations do not match, and slightly maldistribution in achieved in the experimental system due to phase breakthrough and imperfections on the fabrication of the plates. Moreover, comparing the single channel microreactor to the scale-out microreactor, the latter showed poorer performance on CO2 removal while expecting the reactors to have similar performance. By installing inserts with different channel widths, the experimental results were identical to the original case.
Carbon dioxide (CO2) is one of the major atmospheric greenhouse gases (GHG). The continuous increase of CO2 concentration and its long atmospheric lifetime may cause long-term negative effects on the climate. It is important to develop technologies to capture and minimize those emissions into the atmosphere. The objective of this work is to design and study theoretically and experimentally a numbering-up/scale-out membrane microreactor in order to be used as a capture system. The main aim of the work is to obtain an even flow distribution at each plate of the reactor. Nearly uniform flow distribution was achieved at each layer of the numbering-up microreactor according to the carried-out CFD models. The maximum difference between the average velocities was less than 6% for both gas and liquid flows. To obtain better flow distribution into the microreactor, the radius of the inlet/outlet tube was optimized. Results from CFD and experimental simulations do not match, and slightly maldistribution in achieved in the experimental system due to phase breakthrough and imperfections on the fabrication of the plates. Moreover, comparing the single channel microreactor to the scale-out microreactor, the latter showed poorer performance on CO2 removal while expecting the reactors to have similar performance. By installing inserts with different channel widths, the experimental results were identical to the original case.
Record ID
Keywords
Carbon Dioxide Capture, Computational Fluid Dynamics, membrane, microreactor, numbering up
Subject
Suggested Citation
Harkou E, Hafeez S, Manos G, Constantinou A. CFD Study of the Numbering up of Membrane Microreactors for CO2 Capture. (2023). LAPSE:2023.5090
Author Affiliations
Harkou E: Department of Chemical Engineering, Cyprus University of Technology, 57 Corner of Athinon and Anexartisias, Limassol 3036, Cyprus
Hafeez S: Division of Chemical & Energy Engineering, School of Engineering, London South Bank University, London SE1 0AA, UK [ORCID]
Manos G: Department of Chemical Engineering, University College London, London WCIE 7JE, UK [ORCID]
Constantinou A: Department of Chemical Engineering, Cyprus University of Technology, 57 Corner of Athinon and Anexartisias, Limassol 3036, Cyprus; Division of Chemical & Energy Engineering, School of Engineering, London South Bank University, London SE1 0AA, UK [ORCID]
Hafeez S: Division of Chemical & Energy Engineering, School of Engineering, London South Bank University, London SE1 0AA, UK [ORCID]
Manos G: Department of Chemical Engineering, University College London, London WCIE 7JE, UK [ORCID]
Constantinou A: Department of Chemical Engineering, Cyprus University of Technology, 57 Corner of Athinon and Anexartisias, Limassol 3036, Cyprus; Division of Chemical & Energy Engineering, School of Engineering, London South Bank University, London SE1 0AA, UK [ORCID]
Journal Name
Processes
Volume
9
Issue
9
First Page
1515
Year
2021
Publication Date
2021-08-26
ISSN
2227-9717
Version Comments
Original Submission
Other Meta
PII: pr9091515, Publication Type: Journal Article
Record Map
Published Article

LAPSE:2023.5090
This Record
External Link

https://doi.org/10.3390/pr9091515
Publisher Version
Download
Meta
Record Statistics
Record Views
257
Version History
[v1] (Original Submission)
Feb 23, 2023
Verified by curator on
Feb 23, 2023
This Version Number
v1
Citations
Most Recent
This Version
URL Here
http://psecommunity.org/LAPSE:2023.5090
Record Owner
Auto Uploader for LAPSE
Links to Related Works
