CFD Modelling of CO2 Capture in a Packed Bed by Chemical Absorption
Моделирование улавливания CO2 в насадочном аппарате методом химической абсорбции с использованием CFD
2013-06-01
SCID: 54.1/j6p4vkny
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CFD modellingCO2 capturechemical absorptionpacked bedtwo-fluid Eulerian model
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Abstract (AI)
The paper deals with numerical modelling of carbon dioxide capture by amine solvent from flue gases in post-combustion technology. A complex flow system including a countercurrent two-phase flow in a porous region, chemical reaction and heat transfer is considered to resolve CO2 absorption. In order to approach the hydrodynamics of the process a two-fluid Eulerian model was applied. At the present stage of model development only the first part of the cycle, i.e. CO2 absorption was included. A series of parametric simulations has shown that carbon dioxide capture efficiency is mostly influenced by the ratio of liquid (aqueous amine solution) to gas (flue gases) mass fluxes. Good consistency of numerical results with experimental data acquired at a small-scale laboratory CO2 capture installation (at the Institute for Chemical Processing of Coal, Zabrze, Poland) has proved the reliability of the model.
Key Findings
1
A CFD model represents CO2 absorption from flue gas using aqueous amine in a countercurrent packed-bed system.
2
Numerical predictions show good consistency with experimental data from a small-scale laboratory CO2 capture installation in Zabrze, Poland.
3
Parametric simulations identify the liquid-to-gas mass-flux ratio as the dominant influence on CO2 capture efficiency.
4
The model couples Eulerian two-fluid hydrodynamics in a porous region with chemical reaction and heat-transfer phenomena.
5
The simulations cover only the absorption stage of the capture cycle, excluding subsequent solvent regeneration.
Research Object
CO2 absorption in a countercurrent packed-bed contactor using an aqueous amine solvent to treat flue gas
Research Subject
CO2 capture efficiency and its dependence on the liquid-to-gas mass-flux ratio in coupled two-phase flow, reaction, and heat-transfer conditions
Publication Details
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2013-06-01
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