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Physical and Mathematical Modelling of Liquid Steel Fluidynamics in a Billet Caster

机译:钢坯连铸机中钢液流动力学的物理和数学建模

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The aim of the present work is to achieve a better understanding of the liquid steel flow patterns in a billet mould when is fed by a misaligned nozzle using two important tools analysis, physical and mathematical modelling. The numerical model includes the government Navier-stokes equations, the k-ε model, and the VOF model for the multiphase air/steel/flux system. These equations are solves through the segregated model embedded in FLUENT®. The physical model was built at 1:1 scale, where red ink and video recording are employed to visualize the fluidynamics. One nozzle deviation is applied towards the mould radius. The results indicate that a centred nozzle position does not guarantee symmetrical flow patterns inside the mould due to its curvature design. Because of curvature, at the normal nozzle alignment the jet trajectory is closer to the inner mould radius. Even when the nozzle deviations are small like 1° or 2°, the results show that the fluid flow consequences are significant and negatives in most of the cases. The worst cases induce an impact of the jet to one of the mould walls and a very unstable meniscus with strong vortexes formation. Under the present configuration, 1° deviation of the nozzle towards the inner mould radius is good enough to achieve symmetrical flow patterns and to obtain a better meniscus control.
机译:本工作的目的是使用两个重要的工具分析,物理模型和数学模型,更好地了解钢坯模具中钢水在未对准喷嘴的情况下的流动方式。数值模型包括用于多相空气/钢/助焊剂系统的政府Navier-stokes方程,k-ε模型和VOF模型。这些方程通过嵌入在FLUENT®中的隔离模型进行求解。物理模型以1:1比例建立,其中使用红色墨水和视频记录来可视化流体动力学。向模具半径施加一个喷嘴偏差。结果表明,由于其曲率设计,居中的喷嘴位置不能保证模具内部的对称流型。由于曲率,在正常喷嘴对准时,射流轨迹更接近模具内半径。即使当喷嘴偏差很小(如1°或2°)时,结果也表明,在大多数情况下,流体流动的后果是显着的,并且是负面的。最坏的情况是,射流撞击模具壁之一,并且弯月面非常不稳定,形成强烈涡流。在当前配置下,喷嘴朝着模具内部半径的1°偏差足以实现对称的流型并获得更好的弯液面控制。

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