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Numerical analysis on transient thermal flow of the blast furnace hearth in tapping process through CFD

机译:高炉炉膛出钢过程瞬态热流的CFD数值分析

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This paper aims to numerically simulate transient thermal flow due to sudden starting drainage of liquid iron from the blast furnace hearth with a sitting dead-man (coke packed structure) by solving the three-dimensional Reynolds averaged Navier-Stokes equation coupled with the transport equation of energy. With the effect of conjugate heat transfer, a computational fluid dynamic (CFD) was performed to generate the dynamic flow field and temperature distribution as function of time, evaluating shear stress on the wall in the hearth and heat flux in the refractories, respectively, during unsteady tapping process from a free convection as the initial stage (t = 0) to the turbulent mixed thermal flow as the final stage (t →∞). It was found that the shear stress on the wall near the tape-hole is significantly raised with increasing tapping time, which corresponds to decrease temperature of the refractory around the tap-hole with tapping time shapely, when the liquid iron begins to flow out from the blast hearth. The obtained results can be used to optimize operating condition for a long campaigning life of blast furnace.
机译:本文旨在通过求解三维雷诺平均Navier-Stokes方程和输运方程,数值模拟坐立死人(焦炭堆积结构)的高炉炉膛中铁水突然开始排放引起的瞬态热流。的能量。在共轭传热的影响下,进行了计算流体动力学(CFD),以生成随时间变化的动态流场和温度分布,分别评估炉膛壁上的剪应力和耐火材料的热通量。从初始的自由对流(t = 0)到最终的湍流混合热流(t→∞)的非稳态分流过程。研究发现,随着出铁时间的增加,带孔附近壁上的剪应力显着升高,这对应于当铁水从出铁口开始流出时,出铁孔周围耐火材料的温度随着出铁时间的成形而逐渐降低。炉膛。获得的结果可用于优化操作条件,以延长高炉的使用寿命。

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