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Dissolution Kinetics of SiO sub(2) into CaO-Fe sub(2)O sub(3)-SiO sub(2) Slag

High-basicity sinter is the predominant Fe-bearing material used in blast furnace process in East Asia. The dissolution of SiO sub(2) into molten calcium ferrite influences the assimilation process. In this study, a rotating cylinder method was used to explore the dissolution kinetics of SiO sub(2)...

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Bibliographic Details
Published in:Metallurgical and materials transactions. B, Process metallurgy and materials processing science Process metallurgy and materials processing science, 2016-06, Vol.47 (3), p.2063-2071
Main Authors: Yu, Bin, Lv, Xuewei, Xiang, Shenglin, Xu, Jian
Format: Article
Language:English
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Summary:High-basicity sinter is the predominant Fe-bearing material used in blast furnace process in East Asia. The dissolution of SiO sub(2) into molten calcium ferrite influences the assimilation process. In this study, a rotating cylinder method was used to explore the dissolution kinetics of SiO sub(2) into CaO-Fe sub(2)O sub(3)-SiO sub(2) slag. The influencing factors, including temperature, rotating time and speed, and initial composition of the slag, were considered. Results showed that the dissolution rate increased with increasing rotation speed and temperature, whereas the increase in omega (SiO sub(2)) or omega (Fe sub(2)O sub(3))/ omega (CaO) ratio in the initial slag composition decreased the dissolution rate. The diffusion coefficient and activation energy of SiO sub(2) during the dissolution process ranged from 2.09 10 super(-6) to 6.40 10 super(-6) cm super(2) s super(-1) and 106.62 to 248.20 kJ mol super(-1), respectively. Concentration difference between the boundary layer and bulk phase was the primary driving force of the dissolution process; however, this process was also influenced by the slag viscosity and ion diffusivity.
ISSN:1073-5615
1543-1916
DOI:10.1007/s11663-016-0627-8