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Dynamic modelling, validation and analysis of post-combustion chemical absorption CO₂ capture plant

Biliyok, Chechet; Lawal, Adekola; Wang, Meihong; Seibert, Frank

Authors

Chechet Biliyok

Adekola Lawal

Meihong Wang

Frank Seibert



Abstract

Development of dynamic models for post-combustion CO₂ capture using monoethanolamine solvent has been reported in the literature. Such models are only validated at steady-state, which means the models can predict process performance at different operating points. However, without dynamic validation, there is no guarantee that the model in question would predict dynamic responses accurately. This paper presents a dynamic validation study. The absorber and regenerator were modelled to account for mass transfer with chemical reactions assumed at equilibrium. Plant data logs were provided by the University of Texas at Austin. Three cases were considered: a conventional process and two cases with intercooled absorbers. The absorber temperature profile, capture level and reboiler duty were used for comparison. It is observed that the model satisfactorily predicts the pilot plant behaviour under multiple process inputs and disturbances. The validated model was then used to analyse the effect of increasing inlet flue gas moisture content and the impact of effective intercooling on the process performance. The former marginally influences the capture level, but significantly affects temperature profile, hence is an important parameter in model validation. The latter enhances capture level, and provides evidence that CO₂ absorption is mass transfer limited.

Citation

Biliyok, C., Lawal, A., Wang, M., & Seibert, F. (2012). Dynamic modelling, validation and analysis of post-combustion chemical absorption CO₂ capture plant. International journal of greenhouse gas control, 9, 428-445. https://doi.org/10.1016/j.ijggc.2012.05.001

Journal Article Type Article
Acceptance Date May 1, 2012
Online Publication Date Jun 2, 2012
Publication Date Jul 1, 2012
Deposit Date Nov 13, 2014
Journal International Journal Of Greenhouse Gas Control
Print ISSN 1750-5836
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 9
Pages 428-445
DOI https://doi.org/10.1016/j.ijggc.2012.05.001
Keywords Post-combustion; CO₂ capture; Chemical absorption; MEA; Intercooler; Dynamic modelling; Model validation
Public URL https://hull-repository.worktribe.com/output/467951
Publisher URL https://www.sciencedirect.com/science/article/pii/S175058361200103X?via%3Dihub
Contract Date Nov 13, 2014

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