Journal of Northeastern University(Natural Science) ›› 2025, Vol. 46 ›› Issue (9): 73-80.DOI: 10.12068/j.issn.1005-3026.2025.20240046

• Materials & Metallurgy • Previous Articles     Next Articles

Study on Multiphase Flow and Homogenization Behavior During Rare Earth Alloying of Molten Steel

Yun-long HAO, Qing-hua XIE, Pei-yuan NI, Ying LI()   

  1. School of Metallurgy,Northeastern University,Shenyang 110819,China. Corresponding author: LI Ying,E-mail: liying@mail. neu. edu. cn
  • Received:2024-03-04 Online:2025-09-15 Published:2025-12-03
  • Contact: Ying LI

Abstract:

In order to study the behavior during the mass transfer and homogenization in the molten pool by argon blowing at the bottom of the ladle in the refining process, a LES-DPM-VOF coupled numerical model for a 150 t ladle in a steel plant was established to simulate slag-steel-argon three phase flow, and the effects of argon blowing rates on multiphase flow behavior of slag-steel-argon and the homogenization phenomenon of liquid steel were studied. The results show that the shape of the slag hole predicted by the numerical model is in good agreement with experimental observations. When the blowing rate is 50 L/min, the maximum velocity of molten steel in the ladle is about 0.7 m/s, and the slag-steel interface only shows a little fluctuation without the formation of a slag hole. As the blowing rate increases from 50 L/min to 100 L/min, the lifting effect of bubbles on molten steel is enhanced, and the maximum upward velocity of molten steel increases from 0.7 m/s to 1.07 m/s. In addition, the fluctuation of the slag-steel interface increases. Furthermore, the study on homogenization behavior shows that the homogenization time of the alloy is inversely proportional to the argon blowing rate. When the diameter of the simulated alloy is 20 cm and the blowing rate is 50 L/min, the homogenization time is 245 s. When the blowing rate increases to 300 L/min, the homogenization time decreases to 145 s.

Key words: steel ladle refining, alloying, multiphase flow, homogenization time, numerical simulation

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