Simulation and comprehensive study of an optimum process for CO2 capture from flue gas; technical, economic, and environmental analyses

An optimum process with a novel method for improving the thermodynamic efficiency of the conventional post-combustion process based on a mono-ethanolamine (MEA) 30 wt% solvent is presented. The presented process, by preheating the rich solvent stream twice and using lean vapor compression (LVC), cau...

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Main Authors: Chusheng Wang, Zijuan Wang, Xiujuan Leng
Format: Article
Language:English
Published: Elsevier 2023-07-01
Series:Alexandria Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016823003472
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author Chusheng Wang
Zijuan Wang
Xiujuan Leng
author_facet Chusheng Wang
Zijuan Wang
Xiujuan Leng
author_sort Chusheng Wang
collection DOAJ
description An optimum process with a novel method for improving the thermodynamic efficiency of the conventional post-combustion process based on a mono-ethanolamine (MEA) 30 wt% solvent is presented. The presented process, by preheating the rich solvent stream twice and using lean vapor compression (LVC), causes the solvent regeneration energy (Eregen) to decrease, the exergy efficiency of the desorption column to increase, and the net CO2 emission to diminish. According to the simulation results, the solvent regeneration energy in the base process is 3.47 GJ/tCO2 and has a value of 2.77 GJ/tCO2 in the proposed scheme, which exhibits a 20.17% decrease. The exergy analysis showed that the desorption column contributes the most to the exergy destruction in the post-combustion process. According to the performed analysis, in the proposed scheme, the exergy destruction in the desorption column reduces from 476.67 kW to 257.48 kW, which shows a 45.98% decrease. Under these conditions, the exergy efficiency of the desorption column is improved by 12.2%. Comparing Eregen parameter with that of previous studies demonstrated that the proposed scheme in this paper has significant superiority regarding optimizing the reboiler's energy. Due to the addition of a compressor, heat exchanger, expansion valve, and separator, the annual capital expenditure (CAPEXy) of the proposed scheme is 13.71% higher than the conventional process, which results in a 12.5% increase in the cost of CO2 capture (CostCO2,capture).
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spelling doaj.art-3008f4e9873f445bb529bbc17d9d4a762023-06-26T04:13:26ZengElsevierAlexandria Engineering Journal1110-01682023-07-0174121138Simulation and comprehensive study of an optimum process for CO2 capture from flue gas; technical, economic, and environmental analysesChusheng Wang0Zijuan Wang1Xiujuan Leng2School of Management Science and Engineering, Chongqing Technology and Business University, Chongqing 400067, China; Corresponding author.School of Management Science and Engineering, Chongqing Technology and Business University, Chongqing 400067, ChinaSchool of Big Data College, Qingdao Huanghai University, Qingdao, Shandong 266427, ChinaAn optimum process with a novel method for improving the thermodynamic efficiency of the conventional post-combustion process based on a mono-ethanolamine (MEA) 30 wt% solvent is presented. The presented process, by preheating the rich solvent stream twice and using lean vapor compression (LVC), causes the solvent regeneration energy (Eregen) to decrease, the exergy efficiency of the desorption column to increase, and the net CO2 emission to diminish. According to the simulation results, the solvent regeneration energy in the base process is 3.47 GJ/tCO2 and has a value of 2.77 GJ/tCO2 in the proposed scheme, which exhibits a 20.17% decrease. The exergy analysis showed that the desorption column contributes the most to the exergy destruction in the post-combustion process. According to the performed analysis, in the proposed scheme, the exergy destruction in the desorption column reduces from 476.67 kW to 257.48 kW, which shows a 45.98% decrease. Under these conditions, the exergy efficiency of the desorption column is improved by 12.2%. Comparing Eregen parameter with that of previous studies demonstrated that the proposed scheme in this paper has significant superiority regarding optimizing the reboiler's energy. Due to the addition of a compressor, heat exchanger, expansion valve, and separator, the annual capital expenditure (CAPEXy) of the proposed scheme is 13.71% higher than the conventional process, which results in a 12.5% increase in the cost of CO2 capture (CostCO2,capture).http://www.sciencedirect.com/science/article/pii/S1110016823003472Post-CombustionASPEN HYSYS SimulationExergy AnalysisMonoethanolamineLean Vapor CompressionPreheating
spellingShingle Chusheng Wang
Zijuan Wang
Xiujuan Leng
Simulation and comprehensive study of an optimum process for CO2 capture from flue gas; technical, economic, and environmental analyses
Alexandria Engineering Journal
Post-Combustion
ASPEN HYSYS Simulation
Exergy Analysis
Monoethanolamine
Lean Vapor Compression
Preheating
title Simulation and comprehensive study of an optimum process for CO2 capture from flue gas; technical, economic, and environmental analyses
title_full Simulation and comprehensive study of an optimum process for CO2 capture from flue gas; technical, economic, and environmental analyses
title_fullStr Simulation and comprehensive study of an optimum process for CO2 capture from flue gas; technical, economic, and environmental analyses
title_full_unstemmed Simulation and comprehensive study of an optimum process for CO2 capture from flue gas; technical, economic, and environmental analyses
title_short Simulation and comprehensive study of an optimum process for CO2 capture from flue gas; technical, economic, and environmental analyses
title_sort simulation and comprehensive study of an optimum process for co2 capture from flue gas technical economic and environmental analyses
topic Post-Combustion
ASPEN HYSYS Simulation
Exergy Analysis
Monoethanolamine
Lean Vapor Compression
Preheating
url http://www.sciencedirect.com/science/article/pii/S1110016823003472
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AT zijuanwang simulationandcomprehensivestudyofanoptimumprocessforco2capturefromfluegastechnicaleconomicandenvironmentalanalyses
AT xiujuanleng simulationandcomprehensivestudyofanoptimumprocessforco2capturefromfluegastechnicaleconomicandenvironmentalanalyses