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首页> 外文期刊>International Journal of Heat and Mass Transfer >Numerical modelling of fluid flow and macrosegregation in a continuous casting slab with asymmetrical bulging and mechanical reduction
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Numerical modelling of fluid flow and macrosegregation in a continuous casting slab with asymmetrical bulging and mechanical reduction

机译:具有不对称凸出和机械减少的连续铸造板中流体流动和宏观聚会的数值模拟

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The various influence factors of macrosegregation are complex and have been researched widely due to their undesirable effect on continuous casting slab. Based on an Eulerian approach, a multiphase solidification model combining turbulent fluid flow, heat transfer, microstructure evolution, solute transport with back diffusion and shell deformation were developed in this work to investigate the fluid flow and macrosegregation in continuous casting slabs under the effects of shell bulging and mechanical reduction. In this model, five phases of the slab were considered: the liquid phase, inter-dendritic melt phase of equiaxed grains, solid phase of equiaxed grains, inter-dendritic melt phase of columnar dendrites, and solid phase of columnar dendrites. The predicted temperature, shell thickness and solute element distribution were verified by the results of thermal infrared imaging, nail-shooting experiments, macrostructure analysis, and carbon-sulphur analysis. In this model, the asymmetrical bulging between two adjacent supporting rollers was considered, and its effect on the fluid flow and macrosegregation of the slab was investigated. The calculation results show that the positive centreline segregation considering the asymmetrical bulging profiles was more serious than that considering the regular sinusoidal shell profiles. Using this model, the slab macrosegregation was investigated with different reduction mechanisms in the mushy zone; a large reduction applied just before the solidification end could significantly reverse the flow of solute-enriched melt and reduce the macrosegregation. These results were also verified by an industrial application. (C) 2019 Elsevier Ltd. All rights reserved.
机译:宏观聚糖的各种影响因素是复杂的,并且由于它们对连续铸造板的不希望的影响而被广泛研究。基于欧拉方法,在这项工作中开发了一种组合湍流流体流动,传热,微观结构演化,回到扩散和壳变形的溶质输送的多相凝固模型,以研究壳体效果的连续铸造板中的流体流动和宏观测定鼓胀和机械减少。在该模型中,考虑了五个阶段:液相,等轴晶粒的树突间熔体阶段,等轴晶粒的固相,柱状颗粒的树突间熔体阶段,以及柱状树枝状的固相。通过热红外成像,指甲拍摄实验,宏观结构分析和碳 - 硫分析的结果验证了预测的温度,壳体厚度和溶质元素分布。在该模型中,考虑了两个相邻的支撑辊之间的不对称凸出,研究了其对板坯的流体流动和宏观聚糖的影响。计算结果表明,考虑到常规正弦壳谱的正则中心线偏析比考虑常规正弦壳曲线更严重。使用该模型,在糊状区的不同减少机制研究了平板宏观调度;在凝固端之前施加的大量减少可以显着逆转富含富含溶质的熔体的流动并减少宏观测定。这些结果也通过工业应用验证。 (c)2019 Elsevier Ltd.保留所有权利。

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