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Coupled Multi-Physics Modeling of Continuous Casting of Steel and DC Casting of Aluminum

机译:铝钢连铸多物理建模和铝的直流铸造

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As the product quality requirements are ever increasing and the gains in productivity are a must to sustain the competition, numerical modeling is now an essential tool to reach these targets. Due to the complexity of continuous and DC casting processes, a coupled multi-physics approach is required to capture all the important phenomena. This paper will present a fully coupled thermal-flow-transport-stress 3D modeling of continuous casting processes, with illustrations on continuous casting of steel and DC casting of aluminum. The influence of fluid flow, using different nozzle designs, on the first solidified shell will be investigated, together with the stress build-up and the air gap formation. Such coupling is achieved using a novel technique recently developed based upon the Mixed Lagrangian-Eulerian method (MiLE) implemented in the Finite Element software ProCAST. Finally, results of microporosity, grain structure and solid state transformations, based upon further multi-physics coupling, will be presented.
机译:随着产品质量要求的增加,生产力的收益是必须维持竞争的必要性,数值建模现在是达到这些目标的重要工具。由于连续和直流铸造过程的复杂性,需要耦合的多物理方法来捕获所有重要现象。本文将呈现连续铸造工艺的完全耦合的热流输送 - 应力3D建模,图示是铝的钢和直流铸造的连续铸造。将研究使用不同喷嘴设计的流体流动的影响将研究在第一凝固壳上,并将其与应力堆积和气隙形成一起进行。使用最近基于在有限元软件Procast中实现的混合拉格朗日 - 欧洲方法(英里)开发的新技术实现了这种耦合。最后,将介绍基于进一步的多物理耦合的微孔,晶粒结构和固态变换的结果。

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