Download 2nd International Symposium on High-Temperature by Jiann-Yang J. Hwang, Jaroslaw Drelich, Jerome Downey, Tao PDF

By Jiann-Yang J. Hwang, Jaroslaw Drelich, Jerome Downey, Tao Jiang, Mark Cooksey

Extreme temperature Metallurgical Processing includes the court cases of the second one overseas Symposium on Thermal Processing of Minerals, Metals and fabrics. This symposium explores actual and chemical adjustments in fabrics which were designed to facilitate the restoration of invaluable metals or have other precious fabrics. Representatives from either and academia excited by the most recent leading edge hot temperature applied sciences. simply because extreme temperature techniques require excessive power enter, the presenters addressed the necessity for sustainable applied sciences that can offer low strength intake and occasional pollutants emissions. The symposium additionally tested the thermodynamics and kinetics of chemical reactions, section alterations at increased temperatures, and characterization of fabrics used or produced in extreme temperature processing.

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Hanaei. Production of high titania slag by Electro-Slag Crucible Melting (ESCM) process. Int. J. Miner. Process. 178, 2006, 175-181. S. H. Eric. Solid state reduction of a natural ilmenite. Minerals Engineering 19 (2006) 334-337. 32 2nd International Symposium on High-Temperature Metallurgical Processing Edited by: Mann-Yang Hwang, Jaroslaw Drelich, Jerome Downey, Too Jiang, and Mark Cooksey TMS (The Minerals, Metals & Materials Society), 2011 A SIMULATION STUDY ON FLUE GAS CIRCULATING SINTERING (FGCS) FOR IRON ORES Tao Jiang, Zhenyu Fan, Yuanbo Zhang *, Guanghui Li, Xiaohui Fan School of Minerals Processing & Bioengineering Central South University, Changsha, Hunan, 410083, China Keywords: iron ore sintering; flue gas circulation; desulphurization Abstract Iron ore sintering process is the main source of SO2 generated in the steel industry, of which the discharge amount of SO2 emission accounts for about 60% of the total.

3 Three-dimensional plot of the response surface for [ A Fig. 4 Three-dimensional plot of the response surface for(/** of triuranium octaoxide ( y ) as related to temperature of triuranium octaoxide ( y ) as related to temperature (%} ) and mass of sample ( ^ 3 ) ( % t ) and time (%2 ) Fig. 3 shows the effect of calcination temperature and calcination time on the value of W* of triuranium octaoxide (mass of sample was fixed at 40 g), and Fig. 4 shows the effect of calcination temperature and mass of sample on the value of U'* of triuranium octaoxide (calcination time was fixed at 35 min).

3 Three-dimensional plot of the response surface for [ A Fig. 4 Three-dimensional plot of the response surface for(/** of triuranium octaoxide ( y ) as related to temperature of triuranium octaoxide ( y ) as related to temperature (%} ) and mass of sample ( ^ 3 ) ( % t ) and time (%2 ) Fig. 3 shows the effect of calcination temperature and calcination time on the value of W* of triuranium octaoxide (mass of sample was fixed at 40 g), and Fig. 4 shows the effect of calcination temperature and mass of sample on the value of U'* of triuranium octaoxide (calcination time was fixed at 35 min).

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