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Carbon and oxygen behavior in the RH degasser with carbon powder addition 被引量:4

Carbon and oxygen behavior in the RH degasser with carbon powder addition
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摘要 For ultra-low-carbon(ULC)steel production,the higher oxygen content before Ruhrstahl-Heraeus(RH)decarburization(de-C)treatment could shorten the de-C time in the RH degasser.However,this would lead to oxidation rates being exceeded by molten steel production,affecting ULC steel surface quality.In this work,a carbon powder addition(CPA)process was proposed to reduce the dissolved oxygen content at the end of RH de-C through addition of carbon powder to molten steel in the vacuum vessel.Carbon and oxygen behavior during the CPA and conventional process was then studied.The results demonstrated that the de-C rate with CPA was lower compared to the conventional process,but the carbon content at the end of de-C presented no difference.The de-C reaction for CPA process took place in the four reaction sites:(1)within the bulk steel where the spontaneous CO bubbles form;(2)splashing area on the liquid steel surface;(3)Ar bubble surface;(4)molten steel surface.The CPA process could significantly reduce the dissolved oxygen content at the end of de-C,the sum content of FeO and MnO in the slag,the aluminum consumption,and the defect rate of rolled products.This was beneficial in improving ULC steel cleanliness. For ultra-low-carbon(ULC) steel production, the higher oxygen content before Ruhrstahl-Heraeus(RH) decarburization(de-C)treatment could shorten the de-C time in the RH degasser. However, this would lead to oxidation rates being exceeded by molten steel production, affecting ULC steel surface quality. In this work, a carbon powder addition(CPA) process was proposed to reduce the dissolved oxygen content at the end of RH de-C through addition of carbon powder to molten steel in the vacuum vessel. Carbon and oxygen behavior during the CPA and conventional process was then studied. The results demonstrated that the de-C rate with CPA was lower compared to the conventional process, but the carbon content at the end of de-C presented no difference. The de-C reaction for CPA process took place in the four reaction sites:(1) within the bulk steel where the spontaneous CO bubbles form;(2) splashing area on the liquid steel surface;(3) Ar bubble surface;(4) molten steel surface. The CPA process could significantly reduce the dissolved oxygen content at the end of de-C, the sum content of FeO and MnO in the slag, the aluminum consumption, and the defect rate of rolled products. This was beneficial in improving ULC steel cleanliness.
出处 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2019年第6期681-688,共8页 矿物冶金与材料学报(英文版)
基金 financially supported by the National Natural Science Foundation of China(No.51874021) Fundamental Research Funds for the Central Universities of China(No.FRF-IC-18-002) State Key Laboratory of Advanced Metallurgy Foundation of China(No.41618019)
关键词 ultra-low-carbon steel ruhrstahl-Heraeus DEGASSER CARBON POWDER de-C pre-deoxidization ultra-low-carbon steel ruhrstahl-Heraeus degasser carbon powder de-C pre-deoxidization
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  • 1LIU Yue,WU Wei,LIU Liu,LIU Ming,LI Yang-zhou.Thermodynamics Behavior of Titanium for BOF Smelting Bearing Steel[J].Journal of Iron and Steel Research(International),2006,13(6):74-78. 被引量:9
  • 2Yamaguchi K, Kishimoto Y. Effect of Refining Conditions for Ultra Low Carbon Steel on Decarburization Reaction in RH Degasser[J]. ISIJ International, 1992, 32(1):126.
  • 3Higuchi Y, Ikenaga H , Shirota Y. Effects of [C], [o] and Pressure on RH Vacuum Decarburization [J]. Tetsu-to- Hagane, 1998, 84(10): 709.
  • 4Shiro Ban-Ya. Mathematical Expression of Slag-Metal Reac- tions in Steelmaking Process by Quadratic Formalism Based on the Regular Solution Model [J]. ISIJ International, 1993, 33 (1):2.
  • 5Seon-Hyokim, Bo Song. Thermodynamic Aspects of Steel Reoxidation Behavior by the Ladle Slag System of CaO-MgO- SiO2-Al2O3-FetO-MnO-P205 [J]. Metallurgical and Materials Transaction B, 1999, 30B(6):435.
  • 6黄希祜.钢铁冶金原理[M].北京:冶金工业出版社,2004.
  • 7Ohta M,Morita K. Interaction Between Silicon and Titaniumin Molten Steel [J]. ISIJ Int, 2003,43(2) : 256.
  • 8Jung S M, Fruehan R J. Thermodynamics of Titanium Oxide inLadle Slags [J]. ISIJ Int, 2001, 41(12): 1447.
  • 9Okamura K. Method of Steelmaking With Low Titanium Con-tent: Japan, 2003-73726A [P]. 2003-03-12 (in Japanese).
  • 10Miyamoto K, Kanno H,Masao Y. Method of Steelmaking forSteels With Very Low Titanium Content: Japan, 2004-307942A [P]. 2004-11-04 (in Japanese).

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