R. Li, C. Wang, Z. Wang, Peixu Yang, F. Xue, Feng Liu, S.-J. Zhang
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Improvement of modeling on the Ppidgeon process for magnesium production by introducing the variable thermophysical properties
The variable thermophysical properties was introduced in the coupling model of heat transfer and reduction reaction in the Pidgeon process to improve the accuracy of numerical calculation. The distribution of temperature and magnesium reduction extent in the briquette layer, and overall magnesium reduction extent in the retort was investigated. The model results show a better agreement with those of industrial production. The characteristic of ?Layer Shift? in the briquette layer during reduction process was clearly presented. It was shown that the reduction reaction occurs only a thin interface. The slag layer producing in the reduction with lower thermal conductivity of 0.4 W?m-1?K-1 greatly impedes the reaction to move forward inside layers, resulting into the slow magnesium production rate in the Pidgeon process. The improved model can provide a more accurate quantitative prediction in magnesium reduction in the Pidgeon process, which is of significance in innovation of key equipment and development of new magnesium production techniques.
期刊介绍:
University of Belgrade, Technical Faculty in Bor, has been publishing the journal called Journal of Mining and Metallurgy since 1965 and in 1997 it was divided in two independent journals dealing with mining and metallurgy separately. Since 2009 Journal of Mining and Metallurgy, Section B: Metallurgy has been accepted in Science Citation Index Expanded.
Journal of Mining and Metallurgy, Section B: Metallurgy presents an international medium for the publication of contributions on original research which reflect the new progresses in theory and practice of metallurgy. The Journal covers the latest research in all aspects of metallurgy including hydrometallurgy, pyrometallurgy, electrometallurgy, transport phenomena, process control, solidification, mechanical working, solid state reactions, materials processing, surface treatment and relationships among processing, structure, and properties of materials.