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A multiple level-set approach for modelling containerless freezing process

机译:一种用于建模容器冻结过程的多级别套装方法

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We propose a multiple level-set model to represent the physics governing the three-phase solidification problem. The model couples thermal characteristics of the freezing front with the dynamics of droplet interface. To deal with liquid, solid, and gas phases, two distinct level-sets are used. The liquid-gas interface which is represented by a level-set moves with an external velocity field that is obtained from the Navier-Stokes equations. The solid-liquid interface, on the other hand, evolves according to the freezing rate of the liquid. The solid-liquid level-set is comprised of an active and passive part. The active segment of the level-set evolves based on temperature gradients and the latent heat of fusion. The passive segment, however, is merely utilized to impose an angle at the tri-junction point. We propose a Hamilton-Jacobi type equation to impose constant or variable angles at the tri-junction point. In order to consider the effect of volume expansion we modify the continuity, and the energy equation. Importantly, in the case of expansion during solidification we can capture the pointy shape on top of the freezing droplet. For validation we compare numerical results with the analytical Stefan problem with and without the density expansion. In addition, we use experimental results of water droplet freezing, available in the literature, to examine the accuracy of the freezing rate, and the droplet morphological. (C) 2020 Elsevier Inc. All rights reserved.
机译:我们提出了一种多级集合模型来代表控制三相凝固问题的物理学。模型将冰冻前面的热特性与液滴接口的动态耦合。为了处理液体,固体和气相,使用两个不同的水平套。由电平组表示的液体气体接口与从Navier-Stokes方程获得的外部速度场移动。另一方面,固液界面根据液体的冷冻速率而发展。固体液体水平集由主动和无源部分组成。水平集的有效段基于温度梯度和融合的潜热来发展。然而,被动段仅用于在三结点处施加一定角度。我们提出了汉密尔顿 - Jacobi型方程,以在三连接点处施加恒定或可变的角度。为了考虑体积扩展的效果,我们修改连续性和能量方程。重要的是,在凝固过程中膨胀的情况下,我们可以在冻结液滴顶部捕获尖斑。为了验证,我们将数值结果与分析斯特凡问题进行比较,并且没有密度扩展。此外,我们使用水滴冻结的实验结果,在文献中提供,检查冷冻率的准确性,以及液滴形态。 (c)2020 Elsevier Inc.保留所有权利。

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