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Quenching Model Based On Multiphase Fluid

机译:基于多相流体的淬火模型

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摘要

A fully-coupled model of quenching by submerging for steel workpieces is presented. The model includes cooling of the piece due to piece-to-bath heat transfer calculations by solving the multiphase problem of an evaporable fluid, metallurgical transformations and subsequent stress generation. The heat transfer model takes into account different boiling stages, from film boiling at very high surface temperatures, to single-phase convection at temperatures below saturation. The evolution and activation of each heat transfer mechanism depend on the dynamics of the vapor-liquid multiphase system of the quenching bath. The multiphase flow was modeled using the drift-flux mixture model, including an equation of conservation of energy of the liquid phase, and solved with a finite element method. The dependence of heat transfer rates on flow parameters such as velocity and vapor fraction is highlighted. As a result, complex cooling patterns that cannot be recovered by current methodologies based on heat transfer coefficient calculations are obtained. By using these results, metallurgical transformations and stress analysis can be predicted more accurately.
机译:提出了一种钢制工件浸没淬火的全耦合模型。该模型通过解决可蒸发流体的多相问题,冶金转变和随后的应力生成,包括由于零件之间的传热计算而导致的零件冷却。传热模型考虑了不同的沸腾阶段,从非常高的表面温度下的薄膜沸腾到低于饱和温度下的单相对流。每个传热机制的发展和激活取决于淬火浴的气液多相系统的动力学。使用漂移-通量混合模型对多相流进行建模,包括一个液相能量守恒方程,并用有限元法求解。突出了传热速率对流量参数(例如速度和蒸汽分数)的依赖性。结果,获得了不能通过基于传热系数计算的当前方法恢复的复杂的冷却模式。通过使用这些结果,可以更准确地预测冶金转变和应力分析。

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