By Jiann-Yang Hwang, Tao Jiang, Mark William Kennedy, Onuralp Yücel, P. Chris Pistorius, Varadarajan Seshadri, Baojun Zhao, Dean Gregurek, Ender Keskinkilic
This assortment good points contributions overlaying the advances and advancements of recent high-temperature metallurgical applied sciences and their functions to the components of: processing of minerals; extraction of metals; guidance of steel, refractory, and ceramic fabrics; remedy and recycling of slag and wastes; conservation of strength; and environmental safety. the amount could have a extensive influence at the teachers and execs serving the metallurgical industries worldwide by means of offering them with accomplished insurance of a large choice of topics.
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Additional info for 8th International Symposium on High-Temperature Metallurgical Processing
For steel production, blast furnace-converter process will be dominant for a long time in China. 9% crude steel is produced by this process in China . Additionally, in this process, BF is the main source of CO2 emission and the main consumer of energy . Therefore, BF ironmaking is the crucial step for saving energy and reducing CO2 emission in steel works. ) since the operational efﬁciency of BF ironmaking has been close to its physical limitation . Standing upon this background, some innovative technologies [5–8] has been proposed or applied in BF ironmaking.
Wenzl Á A. -Y. Hwang et al. 1007/978-3-319-51340-9_5 39 40 D. Gregurek et al. metallurgical process of lead recycling is basically the same. The most important recycling material and hence input material for secondary lead smelters are lead batteries. For recovering the lead, the used batteries undergo separation and pretreatment steps to divide the battery components into the different material fractions. , sulfates and oxides) that require suitable metallurgical processing. , slags from other metal production processes) may also be used in the recycling process, leading to varying input compositions that may require process adaptations.
Y. Shi, E. S. J. Wibberley, Modelling novel coal based direct reduction process. Ironmaking Steelmaking 35, 3–13 (2013) 5. H. Michishita, H. Tanaka, Prospects for coal-based direct reduction process. Kobelco Technol Rev 29, 69–76 (2010) 6. Z. Y. Hwang, Microwave-assisted metallurgy. Int. Mater. Rev. 60, 30–63 (2015) 7. Z. Y. Hwang, J. Mouris, R. Hutcheon, X. Huang, Microwave penetration depth in materials with non-zero magnetic susceptibility. ISIJ Int. 50, 1590–1596 (2010) 8. A. Menéndez, A. Arenillas, B.