Characteristics of Metallurgical Waste Slag and its Heating Behavior in a Microwave Field

Article Preview

Abstract:

Four kinds of typical metallurgical waste slags were characterized with their chemical composition, crystalline phases, microstructure and thermal behavior. The heating behavior of these slags in a microwave field were also examined. The results show that there is a high content of CaO in these waste slags. When the metallurgical waste slags were heated from room temperature to 1300°C, the weight loss of Blast Furnace (BF) slag and ladle furnace (LF) refining slag are only 2.25% and 0.9%, respectively, while the weight loss of Basic Oxygen Furnace (BOF) slag and electric arc furnace (EAF) slag are more than 5%. These metallurgical waste slags have a good absorption capacity for the microwave irradiation, the absorption capacity of microwave decreases in the order of converter slag > EAF carbon steel slag > baste furnace slag. In addition, the temperature-rising rates of the metallurgical waste slags increase with the microwave power and the quality or the particle sizes of slags. Furthermore, the crystalline phases of treated slag with microwave are similar with that of the untreated metallurgical slag. A number of internal cracks in particles of metallurgical slag can be found or extended after microwave treatment.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

574-579

Citation:

Online since:

February 2016

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2016 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] G. Ma, H. Tang, X. Wang, et al., Proc. 4th Baosteel Biennial Academic Conf. (2010) O231-O235.

Google Scholar

[2] Information on http: /www. worldsteel. org/dms/internetDocumentList/bookshop/World-Steel-in -Figures-2014 /document/World%20Steel%20in%20Figures%202014%20Final. pdf.

Google Scholar

[3] S. Eloneva, S. Teir, H. Revitzer, et al., Steel Res. Int., 80(2009) 415-421.

Google Scholar

[4] J.H. Peng, M.Y. Huang, Z.Y. Zhang, et al., Chin. J. Nonferrous Metals, 18(2008) 207-214.

Google Scholar

[5] X.J. Zhai, Y. Fu, B.C. Li, et al., Non-Ferrous Min. Metall., 24(2008) 21-24.

Google Scholar

[6] D. K. Xia, C.A. Pickles, Miner. Eng., 13(2000): 79-94.

Google Scholar

[7] M. Al-Harahsheh, S. Kingman, S. Bradshaw, Int. J. Miner. Process., 80 (2006): 198-204.

Google Scholar

[8] W.H. Su, Fundamental study of stainless steel plant dust by microwave carbothermic reduction. Master dissertation, Wuhan University of Science and Technology, (2010).

Google Scholar

[9] W.J. Tang, B.H. Zhong, X.C. Xu, et al., Ind. Miner. Proc., 31(2002): 7-11, 17.

Google Scholar

[10] Y. Chen, Y. Noboru, T. Shoji, ISIJ Int., 45(2005) 1232-1237.

Google Scholar

[11] Q.H. Jin, S.S. Dai, K.M. Huang, Microwave Chemistry. Science Press, Beijing, (1999).

Google Scholar

[12] T. Kim, J. Lee, Mater. Trans., 52(2011) 2233-2238.

Google Scholar