CO2 Capture by Dual Hollow Fiber Membrane Systems

In this paper, a system for efficient removal of carbon dioxide by hollow fiber membranes is proposed. The system is compact, and it is very useful for application in the offshore energy industries. In particular, it is used to removing CO<sub>2</sub> from the exhaust of power generation...

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Main Authors: Majid Abedinzadegan Abdi, Jing Jing Cai, Kelly Hawboldt
Format: Article
Language:English
Published: Reaserch Institute of Petroleum Industry 2019-02-01
Series:Journal of Petroleum Science and Technology
Subjects:
Online Access:https://jpst.ripi.ir/article_935_65c3920e52b13c8decf22cc6c3f765ff.pdf
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spelling doaj-94048c181a2f46f9aa9d76594eafa8e72020-11-25T01:38:53ZengReaserch Institute of Petroleum IndustryJournal of Petroleum Science and Technology2251-659X2645-33122019-02-0191284310.22078/jpst.2018.3391.1544935CO2 Capture by Dual Hollow Fiber Membrane SystemsMajid Abedinzadegan Abdi0Jing Jing Cai1Kelly Hawboldt2Memorial University of NewfoundlandDepartment of Process Engineering, Faculty of Engineering and Applied Science, Memorial University of Newfoundland, St. John’s, NL, CanadaDepartment of Process Engineering, Faculty of Engineering and Applied Science, Memorial University of Newfoundland, St. John’s, NL, CanadaIn this paper, a system for efficient removal of carbon dioxide by hollow fiber membranes is proposed. The system is compact, and it is very useful for application in the offshore energy industries. In particular, it is used to removing CO<sub>2</sub> from the exhaust of power generation facilities on offshore platforms.<br />The proposed dual membrane contactor contains two types of membranes (polypropylene membrane and silicone rubber membrane); moreover, the dual membrane contactor was designed and constructed for gas absorption processes. The module performance was evaluated based on permeation flux experiments. The experimental results were compared with the predictions from a numerical model developed in our previous studies. Furthermore, the mass transfer resistance in the fabricated module was investigated using resistance-in-series model. It is proposed that the computational techniques be used to develop design techniques in these kinds of complex systems. In addition, experimental methodologies have been used for the design and optimization of cross-flow hollow fiber membrane modules to absorb or desorb the gas. However, the experiments can be expensive and time consuming.<br />Numerical simulations used in conjunction with experiments can decrease the number of required experiments, thus reduce the required costs and time. In this work, a new modelling approach using computational fluid dynamics (CFD) is proposed to improve modelling flow within cross-flow membrane modules, and subsequently as a design means for such modules. In the CFD model, the fiber bundle is modeled as a porous medium to capture flow characteristics through the fiber bundle.<br />Also, mass transfer equations in the fiber and shell sides are coupled and solved using an iteration algorithm by taking consideration of the influence of flow behavior of both gas phase and liquid phase. In parallel, experimental study was also carried out to validate the results of computational modeling.<br />The CFD modeling results correlated well with the experimental data obtained from a lab scale cross-flow membrane module with uniform distributed fibers. The developed model was then used to examine the performance of modules with more complex geometries such as baffled modules and modules containing unevenly distributed fiber bundles. Finally, it was demonstrated that the CFD simulation is a promising approach in developing and optimizing cross-flow membrane module.https://jpst.ripi.ir/article_935_65c3920e52b13c8decf22cc6c3f765ff.pdffoam floodinglow permeabilityheterogeneities
collection DOAJ
language English
format Article
sources DOAJ
author Majid Abedinzadegan Abdi
Jing Jing Cai
Kelly Hawboldt
spellingShingle Majid Abedinzadegan Abdi
Jing Jing Cai
Kelly Hawboldt
CO2 Capture by Dual Hollow Fiber Membrane Systems
Journal of Petroleum Science and Technology
foam flooding
low permeability
heterogeneities
author_facet Majid Abedinzadegan Abdi
Jing Jing Cai
Kelly Hawboldt
author_sort Majid Abedinzadegan Abdi
title CO2 Capture by Dual Hollow Fiber Membrane Systems
title_short CO2 Capture by Dual Hollow Fiber Membrane Systems
title_full CO2 Capture by Dual Hollow Fiber Membrane Systems
title_fullStr CO2 Capture by Dual Hollow Fiber Membrane Systems
title_full_unstemmed CO2 Capture by Dual Hollow Fiber Membrane Systems
title_sort co2 capture by dual hollow fiber membrane systems
publisher Reaserch Institute of Petroleum Industry
series Journal of Petroleum Science and Technology
issn 2251-659X
2645-3312
publishDate 2019-02-01
description In this paper, a system for efficient removal of carbon dioxide by hollow fiber membranes is proposed. The system is compact, and it is very useful for application in the offshore energy industries. In particular, it is used to removing CO<sub>2</sub> from the exhaust of power generation facilities on offshore platforms.<br />The proposed dual membrane contactor contains two types of membranes (polypropylene membrane and silicone rubber membrane); moreover, the dual membrane contactor was designed and constructed for gas absorption processes. The module performance was evaluated based on permeation flux experiments. The experimental results were compared with the predictions from a numerical model developed in our previous studies. Furthermore, the mass transfer resistance in the fabricated module was investigated using resistance-in-series model. It is proposed that the computational techniques be used to develop design techniques in these kinds of complex systems. In addition, experimental methodologies have been used for the design and optimization of cross-flow hollow fiber membrane modules to absorb or desorb the gas. However, the experiments can be expensive and time consuming.<br />Numerical simulations used in conjunction with experiments can decrease the number of required experiments, thus reduce the required costs and time. In this work, a new modelling approach using computational fluid dynamics (CFD) is proposed to improve modelling flow within cross-flow membrane modules, and subsequently as a design means for such modules. In the CFD model, the fiber bundle is modeled as a porous medium to capture flow characteristics through the fiber bundle.<br />Also, mass transfer equations in the fiber and shell sides are coupled and solved using an iteration algorithm by taking consideration of the influence of flow behavior of both gas phase and liquid phase. In parallel, experimental study was also carried out to validate the results of computational modeling.<br />The CFD modeling results correlated well with the experimental data obtained from a lab scale cross-flow membrane module with uniform distributed fibers. The developed model was then used to examine the performance of modules with more complex geometries such as baffled modules and modules containing unevenly distributed fiber bundles. Finally, it was demonstrated that the CFD simulation is a promising approach in developing and optimizing cross-flow membrane module.
topic foam flooding
low permeability
heterogeneities
url https://jpst.ripi.ir/article_935_65c3920e52b13c8decf22cc6c3f765ff.pdf
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