Research Progress of Iron Carburization in Blast Furnace
Zhijia Zhang
School of Metallurgical and Ecological Engineering, University of Science and Technology, Beijing, 30 Xueyuan Rd; Haidian District, Beijing, 100083, China
Search for more papers by this authorJianliang Zhang
School of Metallurgical and Ecological Engineering, University of Science and Technology, Beijing, 30 Xueyuan Rd; Haidian District, Beijing, 100083, China
Search for more papers by this authorKexin Jiao
School of Metallurgical and Ecological Engineering, University of Science and Technology, Beijing, 30 Xueyuan Rd; Haidian District, Beijing, 100083, China
Search for more papers by this authorZhengjian Liu
School of Metallurgical and Ecological Engineering, University of Science and Technology, Beijing, 30 Xueyuan Rd; Haidian District, Beijing, 100083, China
Search for more papers by this authorZhijia Zhang
School of Metallurgical and Ecological Engineering, University of Science and Technology, Beijing, 30 Xueyuan Rd; Haidian District, Beijing, 100083, China
Search for more papers by this authorJianliang Zhang
School of Metallurgical and Ecological Engineering, University of Science and Technology, Beijing, 30 Xueyuan Rd; Haidian District, Beijing, 100083, China
Search for more papers by this authorKexin Jiao
School of Metallurgical and Ecological Engineering, University of Science and Technology, Beijing, 30 Xueyuan Rd; Haidian District, Beijing, 100083, China
Search for more papers by this authorZhengjian Liu
School of Metallurgical and Ecological Engineering, University of Science and Technology, Beijing, 30 Xueyuan Rd; Haidian District, Beijing, 100083, China
Search for more papers by this authorJiann-Yang Hwang
Search for more papers by this authorGerardo R. F. Alvear F.
Search for more papers by this authorOnuralp Yücel
Search for more papers by this authorXinping Mao
Search for more papers by this authorHong Yong Sohn
Search for more papers by this authorNaiyang Ma
Search for more papers by this authorPhillip J. Mackey
Search for more papers by this authorThomas P. Battle
Search for more papers by this authorSummary
This chapter contains sections titled:
-
Introduction
-
Research Progress on the Study of Blast Furnace Top Carburizing
-
Research Progress on the Study of BF Bottom Carburizing
-
Conclusion and Prospect
References
- S.R. Zhang and Z.J. Yu, “Development of Ironmaking Technology in the Past 60 Years,” Iron and Steel, 49 (7) (2014), 8–14.
- Z.Y. Xiang, “Study of Long Campaign Life Technology of Blast Furnace Hearth in Foreign countries,” China Metallurgy, 23 (7) (2013), 1–10.
- F.M. Zhang and Y.H. Dang, “Present Situation and Development of Long Campaign Life Technologies of Large BF in China,” Iron and Steel, 39 (10) (2004), 75–78.
- Y.S. Zhou et al., “Recent Development of BF Long-Campaign Technology,” Iron and Steel, 38 (11) (2003), 70–74.
- H.X. Li et al., “Investigation on damage at large Sized Blast Furnace Hearth Lining,” Ironmaking, 32 (1) (2013), 7–9.
- S.R. Zhang, “Practice for Extending Blast Furnace Campaign Life at Wuhan Iron and Steel Corporation,” Journal of Iron and Steel Research (International), 13 (6) (2006), 1–7.
- J.K. Wright et al., “Dissolution kinetics of particulate graphite injected into iron/carbon melts,” Metallurgical Transactions B, 19 (3) (1988), 375 - 382.
- V. Sahajwalla et al., “Recycling End-of-Life Polymers in an Electric Arc Furnace Steelmaking Process: Fundamentals of Polymer Reactions with Slag and Metal,” Energy & Fuels, 26 (1) (2012), 58–66.
- Y. Sasaki et al., “The Effect of the Liquid Fe – C Phase on the Kinetics in the Carburization of Iron by CO at 1523K,” ISIJ International, 41 (3) (2001), 209–215.
- M. Rahman et al., “The Influence of Ash Impurities on Interfacial Reactions between Carbonaceous Materials and EAF Slag at 1 550°C,” ISIJ International, 49 (3) (2009), 329–336.
- R. Khanna and V. Sahajwalla, “Interaction Parameters for Monte Carlo Simulation of the Grapite/Fe-C Melt Interface: a Phase Transition Study,” Scripta Materialia, 40 (11) (1999), 1289 –1294.
- S. Gupta et al., “Minerals and iron-making reactions in blast furnaces,” Progress in Energy and Combustion Science, 34 (2) (2008), 155–197.
- C. Wu et al., “Influence of ash on mass transfer and interfacial reaction between natural graphite and liquid iron,” Metallurgical and Materials Transactions B, 31 (5) (2000), 1099–1104.
- E. T. Turkdogan, Fundamentals of steelmaking, (Cambridge, Institute of Materials, Minerals and Mining, 1996), 224.
- S. Q. Deng et al., “Study on Carburization of Iron in Upper Part of Blast Furnace,” 28 (12) (1993), 12–16.
- D. Jang et al., “Kinetics of Carbon Dissolution of Coke in Molten Iron,” Metallurgical and Materials Transactions B, 43 (6) (2012), 1308–1314.
- B. Marcelo et al., “Experimental Investigation of Dissolution Rates of Carbonaceous Materials in Liquid Iron-Carbon Melts,” Metallurgical Transactions B, 24 (4) (1993), 629–637.
- C. R. Li et al., “The Study on Carburization of Molten Iron of BF at Dropping Process,” Journal of Guizhou University of Technology, 28 (4) (1999), 48–52.
- T. Murakami, K. Nagata, “New Ironmaking Process From the Viewpoint of Carburation and Iron Melting at Low Temperature,” Mineral Processing and Extractive Metallurgy Review, 24 (3) (2003), 253–267.
- S.T. Cham et al., “Influence of Temperature on Carbon Dissolution of Cokes in Molten Iron,” ISIJ International, 46 (5) (2006), 652–659.
- F. Neumann et al., “Influence of Iron Companions on Carbon Solubility,” Carbon activity and saturation point in cast iron, 47 (1960), 25–32.
- R. Khanna et al., “Dissolution of carbon from coal-chars into liquid iron at 1550 °C,” Metallurgical and Materials Transactions B, 36 (6) (2005), 719–729.
- S.T. Cham et al., “Influence of Mineral Matter on Carbon Dissolution from Metallurgical Coke into Molten Iron: Interfacial Phenomena,” ISIJ International, 49 (12) (2009), 1860 - 1867.
10.2355/isijinternational.49.1860 Google Scholar
- F. McCarthy et al., “Influence of ash on interfacial reactions between coke and liquid iron,” Metallurgical and Materials Transactions B, 34 (5) (2003), 573–580.
- M.W. Chapman et al., “Formation of a Mineral Layer during Coke Dissolution into Liquid Iron and Its Influence on the Kinetics of Coke Dissolution Rate,” Metallurgical and Materials Transactions B, 39 (3) (2008), 418–430.
- H. Sun, “Analysis of reaction rate between solid carbon and molten iron by mathematical models,” ISIJ International, 45 (2005), 1482–1488.
- R. Khanna et al., “Atomistic Monte Carlo simulations on the influence of sulfur during high-temperature decarburization of molten iron–carbon alloys,” Acta Materialia, 58 (6) (2010), 2225–2236.
- V. Sahajwalla, “Influence of sulfur on the solubility of graphite in Iron Melts: a Monte Carlo Simulation Study,” Acta mater, 47 (3) (1999), 793–800.
- V. Sahajwalla et al., “Influence of sulfur on the solubility of graphite in Fe–C–S melts: optimization of interaction parameters,” Acta Materialia, 50 (4) (2002), 663–671.
- M.W. Chapman et al., “The Effect of Sulfur Concentration in Liquid Iron on Mineral Layer Formation during Coke Dissolution,” Metallurgical and Materials Transactions B, 42 (4) (2011), 642–651.