Regeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in CO2 capture

An increase in power demand is one of the key reasons for the global warming problems due to the increase of greenhouse gas emissions. Carbon dioxide (CO2) is the main greenhouse gas emitted into the atmosphere. CO2 capture technology becomes an alternative solution to reduce CO2 emissions. There ar...

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Autores principales: Sasitron Angkanawisan, Pornpote Piumsomboon, Benjapon Chalermsinsuwan
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Lenguaje:EN
Publicado: Elsevier 2022
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Acceso en línea:https://doaj.org/article/faebd6234d8d4b909ced6d72da4c1b82
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spelling oai:doaj.org-article:faebd6234d8d4b909ced6d72da4c1b822021-12-04T04:34:46ZRegeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in CO2 capture2352-484710.1016/j.egyr.2021.11.007https://doaj.org/article/faebd6234d8d4b909ced6d72da4c1b822022-04-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S2352484721011513https://doaj.org/toc/2352-4847An increase in power demand is one of the key reasons for the global warming problems due to the increase of greenhouse gas emissions. Carbon dioxide (CO2) is the main greenhouse gas emitted into the atmosphere. CO2 capture technology becomes an alternative solution to reduce CO2 emissions. There are many processes for CO2 capture technology. Among these, CO2 adsorption using solid sorbent has been wildly received attention. Most of the study was focused on the adsorption performance of solid sorbent. However, only a few studies were focusing on the regeneration of solid sorbent. This study investigated the effects of regeneration temperature and pressure on the regeneration rate of non-modified and modified K2CO3/γ-Al2O3 with monoethanolamine (MEA). The results showed that an increase in regeneration temperature and a decrease in regeneration pressure enhanced the regeneration rate of non-modified and modified K2CO3/γ-Al2O3. Furthermore, the experimental data of the regeneration rate was fitted to Avrami’s fractional-order model for further use in other applications.Sasitron AngkanawisanPornpote PiumsomboonBenjapon ChalermsinsuwanElsevierarticleCO2 captureRegeneration of solid sorbentPotassium carbonateMonoethanolamineElectrical engineering. Electronics. Nuclear engineeringTK1-9971ENEnergy Reports, Vol 8, Iss , Pp 171-177 (2022)
institution DOAJ
collection DOAJ
language EN
topic CO2 capture
Regeneration of solid sorbent
Potassium carbonate
Monoethanolamine
Electrical engineering. Electronics. Nuclear engineering
TK1-9971
spellingShingle CO2 capture
Regeneration of solid sorbent
Potassium carbonate
Monoethanolamine
Electrical engineering. Electronics. Nuclear engineering
TK1-9971
Sasitron Angkanawisan
Pornpote Piumsomboon
Benjapon Chalermsinsuwan
Regeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in CO2 capture
description An increase in power demand is one of the key reasons for the global warming problems due to the increase of greenhouse gas emissions. Carbon dioxide (CO2) is the main greenhouse gas emitted into the atmosphere. CO2 capture technology becomes an alternative solution to reduce CO2 emissions. There are many processes for CO2 capture technology. Among these, CO2 adsorption using solid sorbent has been wildly received attention. Most of the study was focused on the adsorption performance of solid sorbent. However, only a few studies were focusing on the regeneration of solid sorbent. This study investigated the effects of regeneration temperature and pressure on the regeneration rate of non-modified and modified K2CO3/γ-Al2O3 with monoethanolamine (MEA). The results showed that an increase in regeneration temperature and a decrease in regeneration pressure enhanced the regeneration rate of non-modified and modified K2CO3/γ-Al2O3. Furthermore, the experimental data of the regeneration rate was fitted to Avrami’s fractional-order model for further use in other applications.
format article
author Sasitron Angkanawisan
Pornpote Piumsomboon
Benjapon Chalermsinsuwan
author_facet Sasitron Angkanawisan
Pornpote Piumsomboon
Benjapon Chalermsinsuwan
author_sort Sasitron Angkanawisan
title Regeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in CO2 capture
title_short Regeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in CO2 capture
title_full Regeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in CO2 capture
title_fullStr Regeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in CO2 capture
title_full_unstemmed Regeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in CO2 capture
title_sort regeneration of modified potassium carbonate with monoethanolamine sorbent supported on gamma-alumina in co2 capture
publisher Elsevier
publishDate 2022
url https://doaj.org/article/faebd6234d8d4b909ced6d72da4c1b82
work_keys_str_mv AT sasitronangkanawisan regenerationofmodifiedpotassiumcarbonatewithmonoethanolaminesorbentsupportedongammaaluminainco2capture
AT pornpotepiumsomboon regenerationofmodifiedpotassiumcarbonatewithmonoethanolaminesorbentsupportedongammaaluminainco2capture
AT benjaponchalermsinsuwan regenerationofmodifiedpotassiumcarbonatewithmonoethanolaminesorbentsupportedongammaaluminainco2capture
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