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Numerical Modeling and Experimental Verification of Macrosegregation and CET Predictions in Large Steel Roll Ingots

机译:大型钢锭的宏观偏析和CET预测的数值建模和实验验证

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A multi-component Computational Fluid Dynamics (CFD) model developed to study macrosegregation phenomena in 65-tons 2.5 m diameter round-sided steel ingots has been verified through advanced microstructural characterization, chemical analysis and non-destructive testing. Radial and central bars machined out from the full-scale as-cast ingot were compared against the model predictions in terms of columnar-to-equiaxed transition (CET), channel segregation as well as centerline segregation within the central zone of the ingot, which are inherent in the production of industrial scale alloy ingots. The CFD model solves for volume fraction of phases, time-dependent temperature distribution, mass and species transfer to predict segregation patterns in the solidifying ingot. It addresses the influence of various process parameters and mold design aspects on solidification behavior, such as: mold system, pouring rate, superheat, hence, resulted cooling rates, thermal gradients and chemical composition variations. The numerical and experimental results were compared and discussed.
机译:通过先进的微观结构表征,化学分析和无损检测,验证了开发用于研究65吨直径2.5 m直径的圆形钢锭中宏观偏析现象的多组分计算流体动力学(CFD)模型。比较了从完整铸态铸锭加工出的径向和中央棒材与模型预测值之间的关系,从柱状到等轴转变(CET),铸锭中心区域内的通道分离以及中心线分离,这是工业规模合金锭生产中固有的。 CFD模型求解相的体积分数,随时间变化的温度分布,质量和物质转移,以预测凝固铸锭中的偏析模式。它解决了各种工艺参数和模具设计方面对凝固行为的影响,例如:模具系统,浇注速率,过热,因此导致的冷却速率,热梯度和化学成分变化。对数值和实验结果进行了比较和讨论。

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