Design on CO2 capture based on adsorption-absorption integration and energy storage for energy supply buildings with fixed carbon emission Show others and affiliations
(English) In: International Journal of Green Energy, ISSN 1543-5075, E-ISSN 1543-5083Article in journal (Refereed) Epub ahead of print
Abstract [en]
A novel design for the energy storage by adsorption-absorption for the partial CO2 capture of the energy supply buildings with fixed CO2 emission is proposed. The new design successfully utilizes the attainment of the low energy consumption and implements energy storage through adsorption part, overcoming the deficiencies of poor selectivity through absorption part. Numerical approaches have been developed for modeling the adsorption-absorption procedure, while attaining satisfactory agreement with experimental data. The adsorption process is modeled based on the finite volume method, and the absorption process is simulated based on the double-film theory and the rate-based model. The issue of operating parameters upon system assessments has received considerable critical attention by numerical implementations. The results show that the mass fraction of CO2 in the flue gas has been increased to 39.0%. The comprehensive enhancement effects are instrumental at a height of 20 m in the absorption tower. As the CO2 concentration of the flue gas increases from 5.0% to 20.0%, the absorbent flow, absorber diameter, and reboiler specific load decrease by 13.0%, 42.1%, and 16.6%, in respective. The present analysis and design will provide guidance and gain fresh prominence with advantages in the CO2 capture and purification.
Place, publisher, year, edition, pages Taylor and Francis Ltd..
Keywords [en]
energy storage, MEA absorption, Partial-scaleCO2 capture, Rotary adsorption wheel, temperature swing adsorption, Carbon, Carbon dioxide, Digital storage, Energy resources, Energy utilization, Flue gases, Structural design, Carbon emissions, CO 2 emission, Energy supplies, Fixed carbons, Low energy consumption, Novel design, Adsorption
National Category
Energy Engineering
Identifiers URN: urn:nbn:se:mdh:diva-62280 DOI: 10.1080/15435075.2023.2194392 ISI: 000959676900001 Scopus ID: 2-s2.0-85151929185 OAI: oai:DiVA.org:mdh-62280 DiVA, id: diva2:1751692
2023-04-192023-04-192024-01-09 Bibliographically approved