DOI QR코드

DOI QR Code

A Non-contact Detection Method for Smelting in Submerged Arc Furnace based on Magnetic Field Radiation

  • Liu, WeiLing (College of Computer Science and Technology, Taiyuan University of Technology) ;
  • Chang, XiaoMing (College of Computer Science and Technology, Taiyuan University of Technology)
  • Received : 2016.02.21
  • Accepted : 2016.04.21
  • Published : 2016.06.30

Abstract

This paper demonstrates the key parameter detection for smelting of submerged arc furnace (SAF) based on magnetic field radiation. A magnetic field radiation model for the inner structure of SAF is established based on relative theory of electromagnetic field. A simple equipment of 3D magnetic field detection system is developed by theoretical derivation and simulation. The experiments are carried out under the environment of industrial field and AC magnetic field generated by electrode currents and molten currents in the furnace is reflected outside of the furnace. The experimental results show that the key parameters of smelting including the position of electrode tip, the length of electric arc, and the liquid level of molten bath can be achieved. The computed tomography for SAF can be realized by the detection for smelting.

Keywords

References

  1. M. Moghadasian and E. Alenasser, J. Electromagn. Anal. Appl. 3, 47 (2011).
  2. A. C. Mulholland, P. J. Breretonstiles, and C. J. Hockaday, J. S. Afr. I. Min. Metal. 109, 601 (2009).
  3. N. N. Zhang, Z. J. Wang, and D. J. Zhang, IEEE Comput. Mechatr. Contr. Electr. Eng. 3, 108 (2010).
  4. J. Zhang, S. J. Chu, and Z. S. Li, Ferro-Alloys 3, 5 (2014).
  5. S. M. Kang, Ferro-Alloys 2, 30 (2012).
  6. J. M. Wu, Q. X. Wang, Z. Q. Xu, and Q. H. Zhu, Contr. Instru. Chem. Indus. 41, 181 (2013).
  7. Y. Wang, Z. Z. Mao, H. X. Tian, Y. Li, and P. Yuan, J. Cent. South. Univ. T. 17, 560 (2010). https://doi.org/10.1007/s11771-010-0523-3
  8. Y. Bai, Q. Wang, F. R. Meng, and H. Y. Wang, J. ChangChun. University T 33, 383 (2012).
  9. Z. H. An, Ms. D. Thesis, Changchun University of Technology, China (2010).
  10. S. J. Chu, S. L. Zeng, and Z. C. Huang, Ferro-Alloys 2, 13 (2009).
  11. S. J. Chu, X. E. Bao, and Z. S. Li, Ferro-Alloys 3, 22 (2013).
  12. A. S. Hauksdottir, T. Soderstrom, Y. P. Thorfinnsson, and A. Gestsson, IEEE T. Contr. Syst. T 3, 377 (1996).
  13. Q. H. Xiao, Ferro-Alloys 1, 11 (1982).
  14. N. S. Zhang, Ferro-Alloys 6, 1 (1986).
  15. Q. G. Reynolds and R. T. Jones, Miner. Eng. 19, 325 (2006). https://doi.org/10.1016/j.mineng.2005.08.019
  16. M. Ramirez, J. Alexis, G. Trapaga, P. Jonsson, and J. Mckelliget, Trans. ISIJ 19, 325 (2006).
  17. F. Martell, M. Ramirez, A. Llamas, and O. Micheloud, ISIJ International 53, 743 (2013). https://doi.org/10.2355/isijinternational.53.743