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Published in: Metallurgical and Materials Transactions B 1/2015

01-02-2015

Dynamic Wetting of CaO-Al2O3-SiO2-MgO Liquid Oxide on MgAl2O4 Spinel

Authors: Hamed Abdeyazdan, Neslihan Dogan, M. Akbar Rhamdhani, Michael W. Chapman, Brian J. Monaghan

Published in: Metallurgical and Materials Transactions B | Issue 1/2015

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Abstract

Inclusion type and content in steel is critical in steelmaking, affecting both productivity through clogging, and downstream physical properties of the steel. They are normally removed from steel by reacting with a slag (liquid oxide) phase. For efficient inclusion removal, the inclusions must attach/bond with this liquid phase. The strength of the attachment can be in part characterized by the wettability of the liquid oxide on the inclusions. In this study, the dynamic wetting of liquid oxides of the CaO-Al2O3-SiO2-MgO system on a solid spinel (MgAl2O4) substrate with low porosity of 1.9 pct was measured at 1773 K (1500 °C) using a modified sessile drop technique. The dynamic contact angle between the liquid and solid spinel was determined for different CaO/Al2O3 mass percent ratios ranging from 0.98 to 1.55. Characteristic curves of wettability (θ) vs time showed a rapid decrease in wetting in the first 10 seconds tending to a plateau value at extended times. A mathematical model for spreading behavior of liquid oxides by Choi and Lee was adopted and shown to provide a reasonable representation of the spreading behavior with time. The chemical interaction at the interface between spinel (MgAl2O4) and slag was analyzed by carrying out detailed thermodynamic evaluation and characterization using scanning electron microscopy/energy dispersive spectroscopy. There is evidence of liquid penetrating the substrate via pores and along grain boundaries, forming a penetration layer in the substrate. The depth of the penetration layer was found to be a function of substrate porosity and sample cooling rate. It decreased from ~350 µm for 6.7 pct-porous substrate to ~190 µm for substrate with porosity of 1.9 pct and from ~190 µm to ~50 µm for a slow-cooled liquid oxide-spinel substrate sample in the furnace to a rapidly cooled liquid cooled-spinel substrate sample, respectively.

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Literature
1.
go back to reference J.H. Lowe and A. Mitchell: Clean Steel, Institute of Materials, London, 1995, pp. 223-32. J.H. Lowe and A. Mitchell: Clean Steel, Institute of Materials, London, 1995, pp. 223-32.
2.
go back to reference B. Deo and R. Boom: Fundamentals of Steelmaking Metallurgy, Prentice Hall International, New York, 1993, pp. 254-69. B. Deo and R. Boom: Fundamentals of Steelmaking Metallurgy, Prentice Hall International, New York, 1993, pp. 254-69.
3.
go back to reference H. Abdeyazdan, N. Dogan, M.A. Rhamdhani, M. Chapman, and B.J. Monaghan: Materials Science and Technology Conference, Toronto, Canada, AIST, Warrendale, 2013, pp. 507–14. H. Abdeyazdan, N. Dogan, M.A. Rhamdhani, M. Chapman, and B.J. Monaghan: Materials Science and Technology Conference, Toronto, Canada, AIST, Warrendale, 2013, pp. 507–14.
4.
5.
go back to reference L. Zhang, S. Taniguchi and K. Matsumoto: Ironmaking & Steelmaking, 2002, vol. 29, pp. 326-36.CrossRef L. Zhang, S. Taniguchi and K. Matsumoto: Ironmaking & Steelmaking, 2002, vol. 29, pp. 326-36.CrossRef
6.
go back to reference Y. Miki, H. Kitaoka, T. Sakuraya and T. Fujii: ISIJ Int., 1992, vol.32, pp. 142-49.CrossRef Y. Miki, H. Kitaoka, T. Sakuraya and T. Fujii: ISIJ Int., 1992, vol.32, pp. 142-49.CrossRef
7.
go back to reference B.J. Monaghan and L. Chen: Ironmaking & Steelmaking, 2006, vol. 33, pp. 323-30.CrossRef B.J. Monaghan and L. Chen: Ironmaking & Steelmaking, 2006, vol. 33, pp. 323-30.CrossRef
8.
go back to reference B.J. Monaghan, L. Chen and J. Sorbe: Ironmaking & Steelmaking, 2005, vol. 32, pp. 258-64.CrossRef B.J. Monaghan, L. Chen and J. Sorbe: Ironmaking & Steelmaking, 2005, vol. 32, pp. 258-64.CrossRef
9.
go back to reference K.H. Sandhage and G.J. Yurek: J. Am. Ceram. Soc., 1991, vol. 74, pp. 1941-54.CrossRef K.H. Sandhage and G.J. Yurek: J. Am. Ceram. Soc., 1991, vol. 74, pp. 1941-54.CrossRef
10.
11.
go back to reference M. Valdez, K. Prapakorn, A.W. Cramb and S. Seetharaman: Steel Res. Int., 2001, vol. 72, pp. 291-97. M. Valdez, K. Prapakorn, A.W. Cramb and S. Seetharaman: Steel Res. Int., 2001, vol. 72, pp. 291-97.
12.
go back to reference M. Valdez, K. Prapakorn, A.W. Cramb and S. Sridhar: Ironmaking & Steelmaking, 2002, vol. 29, pp. 47-52.CrossRef M. Valdez, K. Prapakorn, A.W. Cramb and S. Sridhar: Ironmaking & Steelmaking, 2002, vol. 29, pp. 47-52.CrossRef
13.
go back to reference X. Yu, R.J. Pomfret and K.S. Coley: Metall. Mater. Trans. B, 1997, vol. 28, pp. 275-79.CrossRef X. Yu, R.J. Pomfret and K.S. Coley: Metall. Mater. Trans. B, 1997, vol. 28, pp. 275-79.CrossRef
14.
go back to reference K.H. Sandhage and G.J. Yurek: J. Am. Ceram. Soc., 1998, vol. 7, pp. 478-89. K.H. Sandhage and G.J. Yurek: J. Am. Ceram. Soc., 1998, vol. 7, pp. 478-89.
15.
go back to reference K.H. Sandhage and G.J. Yurek: J. Am. Ceram. Soc., 1990, vol. 73, pp. 3633-42.CrossRef K.H. Sandhage and G.J. Yurek: J. Am. Ceram. Soc., 1990, vol. 73, pp. 3633-42.CrossRef
16.
go back to reference K.H. Sandhage and G.J. Yurek: J. Am. Ceram. Soc., 1990, vol. 73, pp. 3643-49.CrossRef K.H. Sandhage and G.J. Yurek: J. Am. Ceram. Soc., 1990, vol. 73, pp. 3643-49.CrossRef
17.
19.
go back to reference S. Seetharaman, ed.: Fundamentals of Metallurgy, Woodhead Publishing in Materials, Cambridge, England, 2008, pp. 23–25. S. Seetharaman, ed.: Fundamentals of Metallurgy, Woodhead Publishing in Materials, Cambridge, England, 2008, pp. 23–25.
21.
go back to reference H. Todoroki and S. Inada: Bull. Iron Steel Inst. Jpn, 2003, vol. 8, pp. 575-80. H. Todoroki and S. Inada: Bull. Iron Steel Inst. Jpn, 2003, vol. 8, pp. 575-80.
22.
23.
go back to reference L. Frank: Iron and Steelmaker, 1999, vol. 26, pp. 33-39. L. Frank: Iron and Steelmaker, 1999, vol. 26, pp. 33-39.
24.
go back to reference G.J.W. Kor: First International Calcium Treatment Symposium, Glasgow, UK, The Institute of Metals, London, U.K., 1988, pp. 39–44. G.J.W. Kor: First International Calcium Treatment Symposium, Glasgow, UK, The Institute of Metals, London, U.K., 1988, pp. 39–44.
25.
go back to reference N. Verma, P. Pistorius, R. Fruehan, M. Potter, H. Oltmann and E. Pretorius: Metall. Mater. Trans. B, 2012, vol. 43, pp. 830-40.CrossRef N. Verma, P. Pistorius, R. Fruehan, M. Potter, H. Oltmann and E. Pretorius: Metall. Mater. Trans. B, 2012, vol. 43, pp. 830-40.CrossRef
26.
go back to reference N. Dogan, R.J. Longbottom, M.H. Reid, M.W. Chapman, P. Wilson, L. Moore, and B.J. Monaghan: Ironmak. Steelmak., 2014, accepted. N. Dogan, R.J. Longbottom, M.H. Reid, M.W. Chapman, P. Wilson, L. Moore, and B.J. Monaghan: Ironmak. Steelmak., 2014, accepted.
27.
go back to reference M. Jiang, X. Wang, B. Chen and W. Wang, ISIJ Int., 2010, vol. 50, pp. 95-104.CrossRef M. Jiang, X. Wang, B. Chen and W. Wang, ISIJ Int., 2010, vol. 50, pp. 95-104.CrossRef
28.
go back to reference S. Yang, Q. Wang, L. Zhang, J. Li, K. Peaslee: Metall. Mater. Trans. B, 2012, vol. 43B, pp. 731-50.CrossRef S. Yang, Q. Wang, L. Zhang, J. Li, K. Peaslee: Metall. Mater. Trans. B, 2012, vol. 43B, pp. 731-50.CrossRef
29.
go back to reference C.W. Seo, S.H. Kim, S.K. Jo, M.O. Suk and S.M. Byun: Metall. Mater. Trans. B, 2010, vol. 41B, pp. 790-97.CrossRef C.W. Seo, S.H. Kim, S.K. Jo, M.O. Suk and S.M. Byun: Metall. Mater. Trans. B, 2010, vol. 41B, pp. 790-97.CrossRef
30.
go back to reference T. Nishi and K. Shinme: Tetsu-to-Hagane, 1998, vol. 84, pp. 837–43. T. Nishi and K. Shinme: Tetsu-to-Hagane, 1998, vol. 84, pp. 837–43.
31.
go back to reference N. Eustathopoulos, M.G. Nicholas, and B. Drevet: Wettability at High Temperatures, Elsevier, Oxford, 1999, pp. 106–47. N. Eustathopoulos, M.G. Nicholas, and B. Drevet: Wettability at High Temperatures, Elsevier, Oxford, 1999, pp. 106–47.
32.
go back to reference J.G. Swanson and R.K. Fuyat: Natl. Bur. Stand (U.S.) Circ., 1953, vol. 539(11), p. 35. J.G. Swanson and R.K. Fuyat: Natl. Bur. Stand (U.S.) Circ., 1953, vol. 539(11), p. 35.
33.
go back to reference A. 1774.5 Method 5: The Determination of Density Porosity and Water Adsorption in Refractories and Refractory Materials, Standards Australia, 2004. A. 1774.5 Method 5: The Determination of Density Porosity and Water Adsorption in Refractories and Refractory Materials, Standards Australia, 2004.
34.
go back to reference L.W. Schroeder: Contact Angle, Wettability and Adhesion, CRC Press, Boca Raton, 1993, pp. 349–59. L.W. Schroeder: Contact Angle, Wettability and Adhesion, CRC Press, Boca Raton, 1993, pp. 349–59.
35.
go back to reference Excel, Microsoft Office, Version 14.0.6106.5005 (32-bit), 2010. Excel, Microsoft Office, Version 14.0.6106.5005 (32-bit), 2010.
36.
go back to reference P.V. Riboud, Y. Roux, L. Lucas and H. Gaye: Fachberichte Hüttenpraxis Metallweiterverarbeitung, 1981, vol. 19, pp. 859-69. P.V. Riboud, Y. Roux, L. Lucas and H. Gaye: Fachberichte Hüttenpraxis Metallweiterverarbeitung, 1981, vol. 19, pp. 859-69.
37.
go back to reference K. Mills: National Physical Laboratory, 1.07 edn., U.K., 1991. K. Mills: National Physical Laboratory, 1.07 edn., U.K., 1991.
38.
go back to reference R.H. Davies, A.T. Dinsdale, J.A. Gisby, J.A.J. Robinson and S.M. Martin: Calphad, 2002, vol. 26, pp. 229-71.CrossRef R.H. Davies, A.T. Dinsdale, J.A. Gisby, J.A.J. Robinson and S.M. Martin: Calphad, 2002, vol. 26, pp. 229-71.CrossRef
39.
go back to reference A.W. Cramb, ed.: The Making, Shaping and Treating of Steel, 11th ed., Casting Volume, AIST, Warrendale, 2010, pp. 65–84. A.W. Cramb, ed.: The Making, Shaping and Treating of Steel, 11th ed., Casting Volume, AIST, Warrendale, 2010, pp. 65–84.
40.
go back to reference R.J. Fruehan, ed.: The Making, Shaping and Treating of Steel, 11th ed., Steelmaking and Refining Volume, AIST, Warrendale, 2012, pp. 687–93. R.J. Fruehan, ed.: The Making, Shaping and Treating of Steel, 11th ed., Steelmaking and Refining Volume, AIST, Warrendale, 2012, pp. 687–93.
41.
go back to reference L. Hong, W. Xinhua, Y. Sasaki and M. Hino: Mater. Trans., 2007, vol. 48, pp. 2170-73.CrossRef L. Hong, W. Xinhua, Y. Sasaki and M. Hino: Mater. Trans., 2007, vol. 48, pp. 2170-73.CrossRef
42.
Metadata
Title
Dynamic Wetting of CaO-Al2O3-SiO2-MgO Liquid Oxide on MgAl2O4 Spinel
Authors
Hamed Abdeyazdan
Neslihan Dogan
M. Akbar Rhamdhani
Michael W. Chapman
Brian J. Monaghan
Publication date
01-02-2015
Publisher
Springer US
Published in
Metallurgical and Materials Transactions B / Issue 1/2015
Print ISSN: 1073-5615
Electronic ISSN: 1543-1916
DOI
https://doi.org/10.1007/s11663-014-0207-8

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