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Crystallization of supercooled water: A level-set-based modeling of the dendrite tip velocity

机译:过冷水的结晶:枝晶尖端速度的基于水平集的建模

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摘要

'It is well-known that solidification front of a supercooled liquid is unstable; consequently, this instability leads to the appearance of an array of dendrites of sub-micron diameter. The shape and the velocity of the dendrite propagation are determined by the thermodynamic properties of the liquid and solid phases, including interfacial energy as well as the initial temperatures of both. Accordingly, the numerical simulation of solidification process is a rather challenging problem which requires an accurate prediction of high temperature gradients near the moving solidification front. In this study a relevant level set formulation has been developed enabling correct determination of the position and the curvature of the liquid/ solid interface. At this interface a Dirichlet boundary condition for the temperature field is imposed by applying a ghost-face method. For the purpose of updating the level set function and optimizing computing time a narrow-band around the interface is introduced. Within this band, whose width is temporally adjusted to the maximum curvature of the interface, the normal-to-interface velocity is appropriately expanded. The computational model is firstly validated along with the analytical solution of stable freezing. The tip velocity of dendritic patterns (pertinent to unstable freezing) is investigated by performing two-dimensional simulations. The computational results exhibit excellent qualitative and quantitative agreement with the marginal stability theory as well as with the available experiments in the heat-diffusion-dominated region.
机译:众所周知,过冷液体的凝固前沿不稳定。因此,这种不稳定性导致出现亚微米直径的树枝状晶体的阵列。枝晶传播的形状和速度取决于液相和固相的热力学性质,包括界面能以及两者的初始温度。因此,凝固过程的数值模拟是一个相当具有挑战性的问题,需要对移动的凝固前沿附近的高温梯度进行准确的预测。在这项研究中,已经开发了相关的水平设定公式,从而可以正确确定液体/固体界面的位置和曲率。在该界面上,通过应用幻影面方法对温度场施加Dirichlet边界条件。为了更新级别设置功能和优化计算时间,引入了围绕接口的窄带。在其宽度在时间上调整为界面最大曲率的该波段内,法向界面速度会适当扩展。首先验证了该计算模型以及稳定冻结的解析解。通过执行二维模拟研究树突状图案的尖端速度(与不稳定冻结有关)。计算结果与边际稳定性理论以及在热扩散占主导地位的地区的可用实验显示出优异的定性和定量一致性。

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  • 作者单位

    Institute for Fluid Mechanics and Aerodynamics, Technische Universitat, Darmstadt, Germany;

    Institute for Fluid Mechanics and Aerodynamics, Technische Universitat, Darmstadt, Germany;

    Faculty of Mechanical Engineering and Naval Architecture, University of Zagreb, Croatia;

    Institute for Fluid Mechanics and Aerodynamics, Technische Universitat, Darmstadt, Germany,Center of Smart Interfaces, Technische Universitat, Darmstadt, Germany;

    Institute for Fluid Mechanics and Aerodynamics, Technische Universitat, Darmstadt, Germany,Center of Smart Interfaces, Technische Universitat, Darmstadt, Germany;

    Institute for Fluid Mechanics and Aerodynamics, Technische Universitat, Darmstadt, Germany,Center of Smart Interfaces, Technische Universitat, Darmstadt, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Supercooled liquid; Level set method; Dendritic crystal growth; Marginal stability hypothesis;

    机译:过冷液体水平设置方法;树突状晶体生长;边际稳定性假说;

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