LAPSE:2020.1017
Published Article
LAPSE:2020.1017
Physical and Mathematical Modelling of Mass Transfer in Ladles due to Bottom Gas Stirring: A Review
Alberto N. Conejo
October 6, 2020
Steelmaking involves high-temperature processing. At high temperatures mass transport is usually the rate limiting step. In steelmaking there are several mass transport phenomena occurring simultaneously such as melting and dissolution of additions, decarburization, refining (De-P and De-S), etc. In ladle metallurgy, refining is one of the most important operations. To improve the rate of mass transfer bottom gas injection is applied. In the past, most relationships between the mass transfer coefficient (mtc) and gas injection have been associated with stirring energy as the dominant variable. The current review analyzes a broad range of physical and mathematical modeling investigations to expose that a large number of variables contribute to define the final value of the mtc. Since bottom gas injection attempts to improve mixing phenomena in the whole slag/steel system, our current knowledge shows limitations to improve mixing conditions in both phases simultaneously. Nevertheless, some variables can be optimized to reach a better performance in metallurgical ladles. In addition to this, the review also provides a state of the art on liquid−liquid mass transfer and suggests the current challenges in this field.
Keywords
kinetic models, mass transfer coefficient, mathematical modeling, mixing time, physical modeling
Suggested Citation
Conejo AN. Physical and Mathematical Modelling of Mass Transfer in Ladles due to Bottom Gas Stirring: A Review. (2020). LAPSE:2020.1017
Author Affiliations
Conejo AN: School of Metallurgical and Ecological Engineering, University of Science and Technology, 30 Xueyuan Road, Haidian District, Beijing 100083, China
Journal Name
Processes
Volume
8
Issue
7
Article Number
E750
Year
2020
Publication Date
2020-06-27
Published Version
ISSN
2227-9717
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Original Submission
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PII: pr8070750, Publication Type: Review
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LAPSE:2020.1017
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doi:10.3390/pr8070750
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Oct 6, 2020
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Calvin Tsay
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