Numerical modeling of grade mixing and inclusion entrapment in eight strand billet tundish

Sicheng Song, Yan-hui Sun, Hang-hang An
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Abstract

This study aims to investigate the effect of tundish level control on the change in element content and inclusion amount in molten steel during the low tundish-level steel grade transition. Based on multiphase flow, mass transfer, and discrete phase, a three-dimensional transient numerical simulation of the tundish was established in Ansys Fluent. The model uses moving mesh refinement technology to obtain clear steel and slag interface with a small number of meshes. The numerical simulation results were verified through industrial experiments and physical simulations. The results indicate that when the tundish is at a low level, strand 3 becomes a short-circuit flow, and the number of inclusions in strand 3 is approximately four times that in strand 1. If the old grade density is higher than that of the new grade, the unqualified length of the element content in the transition billet is 10.2 m shorter than that in the opposite order. When the filling speed of the tundish is three times the normal flow rate, the length of the transition billet with an unqualified number of inclusions is 7.1 m less than that when the filling speed is 2 times the normal flow rate. In addition, at the initial stage of the low tundish level steel grade transition, the minimum amount of inclusions in the transition billet can be reduced to 40% of the average amount of inclusions in the old grade; however, the maximum number of inclusions in the transition billet increase by a factor of 2.5 times the average number of inclusions in the new grade at the end stage of the low tundish-level steel grade transition. It can be observed that the inclusions in the initial stage of the low tundish-level steel grade transition have less effect on the quality of the old grades; however, they have a greater effect on the new grades in the final stage of the low tundish-level steel grade transition.
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八股钢坯中间包品位混合和夹杂物夹杂的数值模拟
本研究旨在探讨中间包液位控制对低中间包钢品位转变过程中钢液中元素含量和夹杂物含量变化的影响。基于多相流动、传质和离散相,在Ansys Fluent中建立了中间包三维瞬态数值模拟。该模型采用移动网格细化技术,以少量网格获得清晰的钢渣界面。通过工业实验和物理模拟验证了数值模拟结果。结果表明,当中间包处于低水平时,链3成为短路流,链3的内含物数量约为链1的4倍。当旧品位密度高于新品位密度时,过渡坯中元素含量的不合格长度比相反顺序短10.2 m。中间包填充速度为正常流量的3倍时,夹杂物数量不合格的过渡坯的长度比填充速度为正常流量的2倍时短7.1 m。此外,在低中间包级钢种过渡初始阶段,过渡钢坯中最小夹杂物含量可降至老钢种平均夹杂物含量的40%;然而,在低中间包钢等级过渡的最后阶段,过渡钢坯中最大夹杂物数量增加了新等级平均夹杂物数量的2.5倍。结果表明:低中间包钢等级过渡初期夹杂物对旧等级的质量影响较小;然而,在低中间包钢等级过渡的最后阶段,它们对新等级的影响更大。
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