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MODELING OF THE CONTINUOUS CASTING OF STEEL -PAST, PRESENT AND FUTURE

机译:钢铁连续铸造的建模 - 现行和未来

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This lecture honoring Keith Brimacombe looks over the history, current abilities, and future potential of mathematical models to improve understanding and to help solve practical problems in the continuous casting of steel. Early finite-difference models of solidification, which were pioneered by Keith Brimacombe and his students, form the basis for the online dynamic models used to control spray water flow in a modern slab caster. Computational thermal-stress models, also pioneered by Brimacombe, have led to improved understanding of mold distortion, crack formation, and other phenomena. This has enabled process improvements, such as optimized mold geometry and spray cooling design. Today, sophisticated models such as transient and multiphase fluid flow rival water modeling in providing insights into flow-related defects. Heat flow and stress models have also advanced to yield new insights. As computer power increases and improvements via empirical plant trials become more costly, models will likely play an increasing role in future developments of complex mature processes, such as continuous casting.
机译:讲座尊重基思Brimacombe的讲座越来越多的数学模型的历史,当前能力和未来的潜力,以提高理解,并帮助解决钢铁连续铸造中的实际问题。早期有限差异凝固模型,由Keith Brimacombe和他的学生开创,形成了用于控制现代平板施法者中喷水流量的在线动态模型的基础。计算热应力模型,也由Brimacombe开创,导致了改善模具变形,裂缝形成和其他现象的理解。这使能过程改进,例如优化的模具几何形状和喷雾冷却设计。如今,复杂的模型,如瞬态和多相流体流动竞争对手水建模,在流动相关的缺陷中提供了洞察力。热流和应力模型也提出了新的见解。随着计算机功率的增加和通过经验植物试验的改善变得更昂贵,模型可能在复杂成熟过程的未来发展中发挥越来越大的作用,例如连续铸造。

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