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Effect of continuous casting speed on mold surface flow and the related near-surface distribution of non-metallic inclusions 被引量:10

Effect of continuous casting speed on mold surface flow and the related near-surface distribution of non-metallic inclusions
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摘要 For the control of surface defects in interstitial-free(IF) steel, quantitative metallographic analyses of near-surface inclusions and surface liquid flow detection via the nail-board tipping method were conducted. The results show that, at casting speeds of 0.8 and 1.0 m/min, a thin liquid mold flux layer forms and non-uniform floating of argon bubbles occurs, inducing the entrainment and subsequent entrapment of the liquid flux; fine inclusion particles of Al_2O_3 can also aggregate at the solidification front. At higher casting speeds of 1.4 and 1.6 m/min, the liquid mold flux can be entrained and carried deeper into the liquid steel pool because of strong level fluctuations of the liquid steel and the flux. The optimal casting speed is approximately 1.2 m/min, with the most favorable surface flow status and, correspondingly, the lowest number of inclusions near the slab surface. For the control of surface defects in interstitial-free(IF) steel, quantitative metallographic analyses of near-surface inclusions and surface liquid flow detection via the nail-board tipping method were conducted. The results show that, at casting speeds of 0.8 and 1.0 m/min, a thin liquid mold flux layer forms and non-uniform floating of argon bubbles occurs, inducing the entrainment and subsequent entrapment of the liquid flux; fine inclusion particles of Al_2O_3 can also aggregate at the solidification front. At higher casting speeds of 1.4 and 1.6 m/min, the liquid mold flux can be entrained and carried deeper into the liquid steel pool because of strong level fluctuations of the liquid steel and the flux. The optimal casting speed is approximately 1.2 m/min, with the most favorable surface flow status and, correspondingly, the lowest number of inclusions near the slab surface.
出处 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2019年第2期186-193,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. 51674069) the National Key R & D Program of China (No. 2017YFC0805100)
关键词 non-metallic INCLUSIONS DISTRIBUTION CASTING SPEED surface flow non-metallic inclusions distribution casting speed surface flow
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  • 1曹娜,朱苗勇.高拉速板坯连铸结晶器内钢/渣界面行为的数值模拟[J].金属学报,2007,43(8):834-838. 被引量:25
  • 2J.K.Park,I.V.Samaresekera,B.G.Thomas,et al.,Thermal and mechanical behavior of copper molds during thin-slab casting (Ⅰ):Plant trial and mathematical modeling,Metall.Mater.Trans.B,33(2002),p.425.
  • 3S.H.Seyedein and M.Hassan,Three-dimensional simulation of coupled turbulent flow and macroscopic solidification heat transfer for continuous slab casters,Int.J.Heat Mass Transfer,40(1997),p.4405.
  • 4N.J.Lawson and M.R.Davidson,Oscillatory flow in a physical model of a thin slab casting mold with a bifurcated submerged entry nozzle,J.Fluids Eng.,124(2002),p.535.
  • 5B.G.Thomas and X.Huang,Effect of argon gas on fluid flow in a continuous slab casting mold,[in] Proceeding of the 76th Steelmaking Conference,Dallas,1993,p.273.
  • 6J.Szekeli,J.W.Evans,and J.K.Brimacombe,Mathematical and Physical Modeling of Primary Metals Processing Operations,John Wiley,New York,1988,p.211.
  • 7W.J.Maddever,A.McLean,J.S.Luckett,et al.,An investigation of casting streams,Can.Metall.Q.,12(1973),p.79.
  • 8R.E.Johnstone and M.W.Thring,Pilot Plans,Models and Scale-Up Methods in Chemical Engineering,McGraw Hill,New York,1957,p.245.
  • 9J.Parker,J.Boggs,and E.Blicks,Introduction to the Theory of Similarity,Academic Press,New York,1965,p.116.
  • 10J.Szekely,Fluid Flaw Phenomenon in Metals Processing,Academic Press,New York,1969,p.368.

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