4.7 Article

Enhancing energy efficiency of chemical absorption-based CO2 capture process with advanced waste-heat recovery modules at a high capture rate

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CHEMICAL ENGINEERING JOURNAL
卷 472, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2023.144918

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Amine-basedCO2 capture; High capture rate; Waste heat recovery; Equivalence factor; Economic feasibility

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This study aims to improve the energy efficiency of a monoethanolamine (MEA)-based CO2 capture process by developing advanced process modules that utilize low-grade waste heat. Cascade modules were found to have outstanding energy-saving performance, with an average improvement of 50% over single modules. Economic analysis showed that the advanced process modules were economically feasible, with a savings-to-investment ratio exceeding 1. The cascade module for direct heat supply was identified as the most appropriate option in terms of both economic viability and energy-saving efficiency in amine-based CO2 capture processes, particularly at a higher equivalence factor (EF).
A commercial-ready amine-based CO2 capture process (CCP) restricts its potential for industrial deployment at a high capture rate to achieve a net-zero carbon target due to its energy-intensive nature. This study aims to enhance the energy efficiency of a monoethanolamine (MEA)-based CCP, operating at a 95% capture rate, by developing advanced process modules that utilize low-grade waste heat. To establish a foundation for designing cascade modules that can recover energy from all available waste heat, the waste heat characteristics were analyzed, and the feasibility of four single modules was explored to recover the latent heat in a stripped gas. Subsequently, this study comparatively investigated the equivalent electrical works of the two designed cascade modules combined with lean vapor compression (LVC). A techno-analysis indicated that cascade modules provided outstanding energy-saving performance ranging from 12.27% to 24.55%, with an average improvement of 50% over single modules. Although the cascade modules combined with LVC showed similar energy-saving performances, higher robustness for equivalence factor (EF) and more energy-savings were discovered in the electricity generation and direct heat supply strategies, respectively. Economic analysis indicated that advanced process modules were economically feasible, with a savings-to-investment ratio (SIR) exceeding 1. The SIR and payback period (PBP) depended on EF and electricity prices. Significantly, the cascade module for direct heat supply emerged as the most appropriate in terms of both economic viability and energy-saving efficiency in amine-based CCPs, particularly at a higher EF.

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