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Reaction Mechanism of CA(6), Al(2)O(3) and CA(6)-Al(2)O(3) Refractories with Refining Slag

In this study, to clarify the corrosion mechanism of CA(6) based refractory by refining slag, the static crucible tests for CA(6), CA(6)-Al(2)O(3), and Al(2)O(3) refractory, were carried out and the detail reaction processes were analyzed from the perspective of thermodynamic simulation and structur...

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Detalles Bibliográficos
Autores principales: Liu, Jie, Liu, Zheng, Feng, Jisheng, Li, Bin, Chen, Junhong, Ren, Bo, Jia, Yuanping, Yin, Shu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9573243/
https://www.ncbi.nlm.nih.gov/pubmed/36234120
http://dx.doi.org/10.3390/ma15196779
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author Liu, Jie
Liu, Zheng
Feng, Jisheng
Li, Bin
Chen, Junhong
Ren, Bo
Jia, Yuanping
Yin, Shu
author_facet Liu, Jie
Liu, Zheng
Feng, Jisheng
Li, Bin
Chen, Junhong
Ren, Bo
Jia, Yuanping
Yin, Shu
author_sort Liu, Jie
collection PubMed
description In this study, to clarify the corrosion mechanism of CA(6) based refractory by refining slag, the static crucible tests for CA(6), CA(6)-Al(2)O(3), and Al(2)O(3) refractory, were carried out and the detail reaction processes were analyzed from the perspective of thermodynamic simulation and structural evolution. From the results, CaAl(4)O(7) plays a vital role in the slag corrosion resistance of the three refractories. Regarding CA(6) refractory, the double pyramid module in CA(6) crystal structure was destroyed very quickly, leading to the rapid collapse of its structure to form the denser CaAl(4)O(7) in high amounts. As a result, a reaction layer mainly composed of CaAl(4)O(7) formed, which effectively inhibited the slag corrosion, so CA(6) refractory exhibits the most excellent slag corrosion. Meanwhile, the formation of CaAl(4)O(7) can also avoid CA(6) particles entering the molten steel to introduce exogenous inclusions. For Al(2)O(3) refractory, the generation of CaAl(4)O(7) is much slower than that of CA(6) and CA(6)-Al(2)O(3) refractory, and the amount generated is also quite small, resulting in its worst slag corrosion among the three crucibles. Therefore, CA(6) based refractory has excellent application potential in ladle refining and clean steel smelting.
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spelling pubmed-95732432022-10-17 Reaction Mechanism of CA(6), Al(2)O(3) and CA(6)-Al(2)O(3) Refractories with Refining Slag Liu, Jie Liu, Zheng Feng, Jisheng Li, Bin Chen, Junhong Ren, Bo Jia, Yuanping Yin, Shu Materials (Basel) Article In this study, to clarify the corrosion mechanism of CA(6) based refractory by refining slag, the static crucible tests for CA(6), CA(6)-Al(2)O(3), and Al(2)O(3) refractory, were carried out and the detail reaction processes were analyzed from the perspective of thermodynamic simulation and structural evolution. From the results, CaAl(4)O(7) plays a vital role in the slag corrosion resistance of the three refractories. Regarding CA(6) refractory, the double pyramid module in CA(6) crystal structure was destroyed very quickly, leading to the rapid collapse of its structure to form the denser CaAl(4)O(7) in high amounts. As a result, a reaction layer mainly composed of CaAl(4)O(7) formed, which effectively inhibited the slag corrosion, so CA(6) refractory exhibits the most excellent slag corrosion. Meanwhile, the formation of CaAl(4)O(7) can also avoid CA(6) particles entering the molten steel to introduce exogenous inclusions. For Al(2)O(3) refractory, the generation of CaAl(4)O(7) is much slower than that of CA(6) and CA(6)-Al(2)O(3) refractory, and the amount generated is also quite small, resulting in its worst slag corrosion among the three crucibles. Therefore, CA(6) based refractory has excellent application potential in ladle refining and clean steel smelting. MDPI 2022-09-30 /pmc/articles/PMC9573243/ /pubmed/36234120 http://dx.doi.org/10.3390/ma15196779 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
Liu, Jie
Liu, Zheng
Feng, Jisheng
Li, Bin
Chen, Junhong
Ren, Bo
Jia, Yuanping
Yin, Shu
Reaction Mechanism of CA(6), Al(2)O(3) and CA(6)-Al(2)O(3) Refractories with Refining Slag
title Reaction Mechanism of CA(6), Al(2)O(3) and CA(6)-Al(2)O(3) Refractories with Refining Slag
title_full Reaction Mechanism of CA(6), Al(2)O(3) and CA(6)-Al(2)O(3) Refractories with Refining Slag
title_fullStr Reaction Mechanism of CA(6), Al(2)O(3) and CA(6)-Al(2)O(3) Refractories with Refining Slag
title_full_unstemmed Reaction Mechanism of CA(6), Al(2)O(3) and CA(6)-Al(2)O(3) Refractories with Refining Slag
title_short Reaction Mechanism of CA(6), Al(2)O(3) and CA(6)-Al(2)O(3) Refractories with Refining Slag
title_sort reaction mechanism of ca(6), al(2)o(3) and ca(6)-al(2)o(3) refractories with refining slag
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9573243/
https://www.ncbi.nlm.nih.gov/pubmed/36234120
http://dx.doi.org/10.3390/ma15196779
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