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Simulation of Organic Liquid Product Deoxygenation through Multistage Countercurrent Absorber/Stripping Using CO(2) as Solvent with Aspen-HYSYS: Process Modeling and Simulation

In this work, the deoxygenation of organic liquid products (OLP) obtained through the thermal catalytic cracking of palm oil at 450 °C, 1.0 atmosphere, with 10% (wt.) Na(2)CO(3) as a catalyst, in multistage countercurrent absorber columns using supercritical carbon dioxide (SC-CO(2)) as a solvent, w...

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Autores principales: Junior, Manoel Raimundo dos Santos, Costa, Elinéia Castro, Ferreira, Caio Campos, Bernar, Lucas Pinto, da Silva, Marcilene Paiva, de Andrade Mâncio, Andréia, Santos, Marcelo Costa, da Mota, Sílvio Alex Pereira, de Castro, Douglas Alberto Rocha, Junior, Sergio Duvoisin, Borges, Luiz Eduardo Pizarro, Araújo, Marilena Emmi, Machado, Nélio Teixeira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9000492/
https://www.ncbi.nlm.nih.gov/pubmed/35408610
http://dx.doi.org/10.3390/molecules27072211
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author Junior, Manoel Raimundo dos Santos
Costa, Elinéia Castro
Ferreira, Caio Campos
Bernar, Lucas Pinto
da Silva, Marcilene Paiva
de Andrade Mâncio, Andréia
Santos, Marcelo Costa
da Mota, Sílvio Alex Pereira
de Castro, Douglas Alberto Rocha
Junior, Sergio Duvoisin
Borges, Luiz Eduardo Pizarro
Araújo, Marilena Emmi
Machado, Nélio Teixeira
author_facet Junior, Manoel Raimundo dos Santos
Costa, Elinéia Castro
Ferreira, Caio Campos
Bernar, Lucas Pinto
da Silva, Marcilene Paiva
de Andrade Mâncio, Andréia
Santos, Marcelo Costa
da Mota, Sílvio Alex Pereira
de Castro, Douglas Alberto Rocha
Junior, Sergio Duvoisin
Borges, Luiz Eduardo Pizarro
Araújo, Marilena Emmi
Machado, Nélio Teixeira
author_sort Junior, Manoel Raimundo dos Santos
collection PubMed
description In this work, the deoxygenation of organic liquid products (OLP) obtained through the thermal catalytic cracking of palm oil at 450 °C, 1.0 atmosphere, with 10% (wt.) Na(2)CO(3) as a catalyst, in multistage countercurrent absorber columns using supercritical carbon dioxide (SC-CO(2)) as a solvent, with an Aspen-HYSYS process simulator, was systematically investigated. In a previous study, the thermodynamic data basis and EOS modeling necessary to simulate the deoxygenation of OLP was presented. This work addresses a new flowsheet, consisting of 03 absorber columns, 10 expansions valves, 10 flash drums, 08 heat exchanges, 01 pressure pump, and 02 make-ups of CO(2), aiming to improve the deacidification of OLP. The simulation was performed at 333 K, 140 bar, and (S/F) = 17; 350 K, 140 bar, and (S/F) = 38; 333 K, 140 bar, and (S/F) = 25. The simulation shows that 81.49% of OLP could be recovered and that the concentrations of hydrocarbons in the extracts of absorber-01 and absorber-02 were 96.95 and 92.78% (wt.) on a solvent-free basis, while the bottom stream of absorber-03 was enriched in oxygenated compounds with concentrations of up to 32.66% (wt.) on a solvent-free basis, showing that the organic liquid products (OLP) were deacidified and SC-CO(2) was able to deacidify the OLP and obtain fractions with lower olefin contents. The best deacidifying condition was obtained at 333 K, 140 bar, and (S/F) = 17.
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spelling pubmed-90004922022-04-12 Simulation of Organic Liquid Product Deoxygenation through Multistage Countercurrent Absorber/Stripping Using CO(2) as Solvent with Aspen-HYSYS: Process Modeling and Simulation Junior, Manoel Raimundo dos Santos Costa, Elinéia Castro Ferreira, Caio Campos Bernar, Lucas Pinto da Silva, Marcilene Paiva de Andrade Mâncio, Andréia Santos, Marcelo Costa da Mota, Sílvio Alex Pereira de Castro, Douglas Alberto Rocha Junior, Sergio Duvoisin Borges, Luiz Eduardo Pizarro Araújo, Marilena Emmi Machado, Nélio Teixeira Molecules Article In this work, the deoxygenation of organic liquid products (OLP) obtained through the thermal catalytic cracking of palm oil at 450 °C, 1.0 atmosphere, with 10% (wt.) Na(2)CO(3) as a catalyst, in multistage countercurrent absorber columns using supercritical carbon dioxide (SC-CO(2)) as a solvent, with an Aspen-HYSYS process simulator, was systematically investigated. In a previous study, the thermodynamic data basis and EOS modeling necessary to simulate the deoxygenation of OLP was presented. This work addresses a new flowsheet, consisting of 03 absorber columns, 10 expansions valves, 10 flash drums, 08 heat exchanges, 01 pressure pump, and 02 make-ups of CO(2), aiming to improve the deacidification of OLP. The simulation was performed at 333 K, 140 bar, and (S/F) = 17; 350 K, 140 bar, and (S/F) = 38; 333 K, 140 bar, and (S/F) = 25. The simulation shows that 81.49% of OLP could be recovered and that the concentrations of hydrocarbons in the extracts of absorber-01 and absorber-02 were 96.95 and 92.78% (wt.) on a solvent-free basis, while the bottom stream of absorber-03 was enriched in oxygenated compounds with concentrations of up to 32.66% (wt.) on a solvent-free basis, showing that the organic liquid products (OLP) were deacidified and SC-CO(2) was able to deacidify the OLP and obtain fractions with lower olefin contents. The best deacidifying condition was obtained at 333 K, 140 bar, and (S/F) = 17. MDPI 2022-03-29 /pmc/articles/PMC9000492/ /pubmed/35408610 http://dx.doi.org/10.3390/molecules27072211 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Junior, Manoel Raimundo dos Santos
Costa, Elinéia Castro
Ferreira, Caio Campos
Bernar, Lucas Pinto
da Silva, Marcilene Paiva
de Andrade Mâncio, Andréia
Santos, Marcelo Costa
da Mota, Sílvio Alex Pereira
de Castro, Douglas Alberto Rocha
Junior, Sergio Duvoisin
Borges, Luiz Eduardo Pizarro
Araújo, Marilena Emmi
Machado, Nélio Teixeira
Simulation of Organic Liquid Product Deoxygenation through Multistage Countercurrent Absorber/Stripping Using CO(2) as Solvent with Aspen-HYSYS: Process Modeling and Simulation
title Simulation of Organic Liquid Product Deoxygenation through Multistage Countercurrent Absorber/Stripping Using CO(2) as Solvent with Aspen-HYSYS: Process Modeling and Simulation
title_full Simulation of Organic Liquid Product Deoxygenation through Multistage Countercurrent Absorber/Stripping Using CO(2) as Solvent with Aspen-HYSYS: Process Modeling and Simulation
title_fullStr Simulation of Organic Liquid Product Deoxygenation through Multistage Countercurrent Absorber/Stripping Using CO(2) as Solvent with Aspen-HYSYS: Process Modeling and Simulation
title_full_unstemmed Simulation of Organic Liquid Product Deoxygenation through Multistage Countercurrent Absorber/Stripping Using CO(2) as Solvent with Aspen-HYSYS: Process Modeling and Simulation
title_short Simulation of Organic Liquid Product Deoxygenation through Multistage Countercurrent Absorber/Stripping Using CO(2) as Solvent with Aspen-HYSYS: Process Modeling and Simulation
title_sort simulation of organic liquid product deoxygenation through multistage countercurrent absorber/stripping using co(2) as solvent with aspen-hysys: process modeling and simulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9000492/
https://www.ncbi.nlm.nih.gov/pubmed/35408610
http://dx.doi.org/10.3390/molecules27072211
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