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Corrosion of Alumina-Spinel Refractory by Secondary Metallurgical Slag Using Coating Corrosion Test

In this paper, the corrosion mechanism of commercial alumina-spinel refractory was investigated at 1350 and 1450 °C. Disc samples were coated with shells of two different slags containing 4 and 10 wt.% SiO(2). The after-corrosion refractory was investigated in view of changes in its microstructure a...

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Detalles Bibliográficos
Autores principales: Darban, Sina, Reynaert, Camille, Ludwig, Maciej, Prorok, Ryszard, Jastrzębska, Ilona, Szczerba, Jacek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9146358/
https://www.ncbi.nlm.nih.gov/pubmed/35629455
http://dx.doi.org/10.3390/ma15103425
Descripción
Sumario:In this paper, the corrosion mechanism of commercial alumina-spinel refractory was investigated at 1350 and 1450 °C. Disc samples were coated with shells of two different slags containing 4 and 10 wt.% SiO(2). The after-corrosion refractory was investigated in view of changes in its microstructure and phase composition by SEM/EDS and XRD techniques, respectively. At 1350 °C slags slightly infiltrated the microstructure, whereas at 1450 °C slags infiltrated the alumina-spinel refractory causing its significant corrosion. As a result of corrosion, new phases were formed, including calcium dialuminate (Ca(2)Al(4)O(7)), calcium hexaluminate (CaAl(12)O(19)), and gehlenite (Ca(2)AlSi(2)O(7)). Formation of calcium aluminate layers in the microstructure of the refractory inhibited further dissolution of alumina aggregates; however, expansive behavior of CaAl(12)O(19) raised the microstructure porosity. The additional SiO(2) in the slag doubled the amount of low melting gehlenite in the matrix, accelerating the corrosion process of alumina-spinel brick at high temperatures.