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By Jiann-Yang Hwang, Tao Jiang, Chris Pistorius, Gerardo Alvear, Onuralp Yucel, Liyuan Cai, Baojun Zhao, Dean Gregurek, Varadarajan Seshadri

The know-how, operation, power, environmental, research, and destiny improvement of the metallurgical industries using hot temperature strategies are lined within the e-book. The options at the extraction and construction of ferrous and nonferrous metals, alloys, and refractory and ceramic fabrics, the heating techniques and effort administration, and the therapy and utilizations of the wastes and by-products are the subjects of detailed pursuits. This booklet specializes in the subsequent matters: •High potency New Metallurgical approach and expertise basic examine of Metallurgical approach •Alloys and fabrics training •Direct aid and Smelting relief •Coking, New strength and setting •Utilization of sturdy Slag/Wastes and complicated Ores •Characterization of hot temperature Metallurgical Process

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Extra resources for 7th International Symposium on High-Temperature Metallurgical Processing

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Because of much higher fuel consumption in COREX than in blast furnace process, the important role of coal just ranks second to iron ore in raw materials. Heat and reductive gas are provided through coal reaction, and necessary permeability can be realized from certain lumpiness range of coal as well [2] . As a result, in order to obtain stable furnace condition, COREX coal must have certain physical, chemical and high temperature performance[2] . As for the material requirement, COREX can only use 5~50mm nature lump coal and coke as fuel.

Onuralp Yücel, Liyuan Cai, Baojun Zhao, Dean Gregurek, and Varadarajan Seshadri TMS (The Minerals, Metals & Materials Society), 2016 DIRECT ELECTROLYTIC PRODUCTION OF Mo-Si-Ti-C COMPOSITES FROM THEIR OXIDES/SULFIDE/CARBON MIXTURE PRECURSOR IN MOLTEN SALT Xingli Zou1,*, Xionggang Lu1,*, Qian Xu1, Hongwei Cheng1, Shuhua Geng1, Zhongfu Zhou1,2 1 State Key Laboratory of Advanced Special Steel, School of Materials Science and Engineering, Shanghai University, Shanghai 200072, P. R. China 2 Institute of Mathematics and Physics, Aberystwyth University, Aberystwyth SY23 3BZ, UK *Corresponding authors: Tel.

D. Hu, P. W. Yan, "Microstructures and densification of MoSi2-SiC composites by field-activated and pressure-assisted combustion synthesis," J. , (468) (2009), 136-142. 6. M. Patel, J. V. , (58) (2008), 211-214. 7. L. S. Pan, "Fabrication and characterization of TiCw/MoSi2 and SiCw/MoSi2 composites," Mater. , (52) (2002), 223-228. 8. H. , "Preparation and properties of MoSi 2 composites reinforced by TiC, TiCN, and TiB2," Mater. Sci. Eng. A, (396) (2005), 277-284. 9. L. S. Pan, "Fabrication and characterization of TiC-particle-reinforced MoSi2 composites," J.

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