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Modeling of Solidification in a Meniscus Free Continuous Casting

机译:无弯月形连续铸造中的凝固建模

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IRSID (Central research laboratory of Usinor-Sacilor) and EMN (Ecole des Mines de Nancy) are working to develop a physical and numerical model of the shell solidification in a new concept of vertical continuous casters. This new concept involves a shifting of the free surface position upstream so that hydrodynamical pertubations of the liquid steel meniscus do not affect the solidification. This model describes the thermal behavior of a solidifying shell in the upper part of the mold, taking into account the shell movement against the copper mold. Two different parts of the steel shell are considered: one part of the shell has a static solidification (solidifying shell without motion against the mold); the other part experiences a dynamical solidification (the solidified shell is withdrawn at the casting speed). From casting experiments performed on a continuous caster, heat flux between the solidified shell and the upper part of the mold was determined. The heat flux used as the boundary condition in the solidification model takes into account the nature of the contact between the mold and the solid steel and the solidified steel thickness. Such a model is useful to calculate heat fluxes and to evaluate the effect of the casting speed on the solidified shell shape and thickness.
机译:IRSID(Usinor-Sacilor的中央研究实验室)和EMN(南锡矿业大学)正在努力开发立式连铸机新概念中壳体凝固的物理和数值模型。这个新概念涉及将自由表面位置向上游移动,以使液态钢弯月面的流体动力穿孔不影响凝固。该模型描述了凝固壳在模具上部的热行为,其中考虑了壳对铜模具的运动。考虑了钢壳的两个不同部分:壳的一部分具有静态凝固作用(凝固的壳不会在模具上运动);另一部分进行动态凝固(凝固的壳体以浇铸速度抽出)。通过在连铸机上进行的铸造实验,确定了凝固壳和模具上部之间的热通量。在凝固模型中用作边界条件的热通量考虑了模具与实心钢之间的接触性质以及凝固后的钢厚度。这种模型可用于计算热通量,并评估铸造速度对凝固的壳体形状和厚度的影响。

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