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Understanding the Interaction of Potassium Salts with an Ilmenite Oxygen Carrier Under Dry and Wet Conditions

[Image: see text] This study describes how potassium salts representative of those in bio ash affect the reactivity of the oxygen carrier ilmenite under moist and dry conditions. Ilmenite is a bench-mark oxygen carrier for chemical-looping combustion, a technique that can separate CO(2) from flue ga...

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Autores principales: Hildor, Fredrik, Zevenhoven, Maria, Brink, Anders, Hupa, Leena, Leion, Henrik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7495758/
https://www.ncbi.nlm.nih.gov/pubmed/32954146
http://dx.doi.org/10.1021/acsomega.0c02538
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author Hildor, Fredrik
Zevenhoven, Maria
Brink, Anders
Hupa, Leena
Leion, Henrik
author_facet Hildor, Fredrik
Zevenhoven, Maria
Brink, Anders
Hupa, Leena
Leion, Henrik
author_sort Hildor, Fredrik
collection PubMed
description [Image: see text] This study describes how potassium salts representative of those in bio ash affect the reactivity of the oxygen carrier ilmenite under moist and dry conditions. Ilmenite is a bench-mark oxygen carrier for chemical-looping combustion, a technique that can separate CO(2) from flue gases with minimal energy penalty. Different potassium salts were mixed with ilmenite to a concentration of 4 wt % potassium. The salts used were K(2)CO(3), K(2)SO(4), KCl, and KH(2)PO(4). Experiments were performed at 850 °C under alternately oxidizing and reducing conditions in a dry atmosphere or in the presence of steam. Analyses of the oxygen carrier regarding changes in reactivity, structure, and composition followed the exposures. This study showed that salts such as K(2)CO(3), K(2)SO(4), and KCl increase the reactivity of the ilmenite. For the samples mixed with KCl, most of the salt was evaporated. KH(2)PO(4) decomposed into KPO(3), forming layers around the ilmenite particles that lead to agglomeration. Additionally, the KPO(3) layer was more or less nonpermeable for CO and decreased the reactivity toward H(2) significantly in both dry and wet conditions. This decreased reactivity indicates that the concentration of phosphorus in biofuel may have a significant effect on oxygen carrier degradation. It was also observed that the presence of steam changed the chemistry drastically for the nonphosphorus-containing salts. Alkali salts may react with steam, forming volatile KOH that evaporates partly. KOH may also form K-titanates by reaction with the oxygen carrier, leading to segregation of iron and titanium phases in the ilmenite.
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spelling pubmed-74957582020-09-18 Understanding the Interaction of Potassium Salts with an Ilmenite Oxygen Carrier Under Dry and Wet Conditions Hildor, Fredrik Zevenhoven, Maria Brink, Anders Hupa, Leena Leion, Henrik ACS Omega [Image: see text] This study describes how potassium salts representative of those in bio ash affect the reactivity of the oxygen carrier ilmenite under moist and dry conditions. Ilmenite is a bench-mark oxygen carrier for chemical-looping combustion, a technique that can separate CO(2) from flue gases with minimal energy penalty. Different potassium salts were mixed with ilmenite to a concentration of 4 wt % potassium. The salts used were K(2)CO(3), K(2)SO(4), KCl, and KH(2)PO(4). Experiments were performed at 850 °C under alternately oxidizing and reducing conditions in a dry atmosphere or in the presence of steam. Analyses of the oxygen carrier regarding changes in reactivity, structure, and composition followed the exposures. This study showed that salts such as K(2)CO(3), K(2)SO(4), and KCl increase the reactivity of the ilmenite. For the samples mixed with KCl, most of the salt was evaporated. KH(2)PO(4) decomposed into KPO(3), forming layers around the ilmenite particles that lead to agglomeration. Additionally, the KPO(3) layer was more or less nonpermeable for CO and decreased the reactivity toward H(2) significantly in both dry and wet conditions. This decreased reactivity indicates that the concentration of phosphorus in biofuel may have a significant effect on oxygen carrier degradation. It was also observed that the presence of steam changed the chemistry drastically for the nonphosphorus-containing salts. Alkali salts may react with steam, forming volatile KOH that evaporates partly. KOH may also form K-titanates by reaction with the oxygen carrier, leading to segregation of iron and titanium phases in the ilmenite. American Chemical Society 2020-09-02 /pmc/articles/PMC7495758/ /pubmed/32954146 http://dx.doi.org/10.1021/acsomega.0c02538 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Hildor, Fredrik
Zevenhoven, Maria
Brink, Anders
Hupa, Leena
Leion, Henrik
Understanding the Interaction of Potassium Salts with an Ilmenite Oxygen Carrier Under Dry and Wet Conditions
title Understanding the Interaction of Potassium Salts with an Ilmenite Oxygen Carrier Under Dry and Wet Conditions
title_full Understanding the Interaction of Potassium Salts with an Ilmenite Oxygen Carrier Under Dry and Wet Conditions
title_fullStr Understanding the Interaction of Potassium Salts with an Ilmenite Oxygen Carrier Under Dry and Wet Conditions
title_full_unstemmed Understanding the Interaction of Potassium Salts with an Ilmenite Oxygen Carrier Under Dry and Wet Conditions
title_short Understanding the Interaction of Potassium Salts with an Ilmenite Oxygen Carrier Under Dry and Wet Conditions
title_sort understanding the interaction of potassium salts with an ilmenite oxygen carrier under dry and wet conditions
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7495758/
https://www.ncbi.nlm.nih.gov/pubmed/32954146
http://dx.doi.org/10.1021/acsomega.0c02538
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