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Effects of temperature boundary conditions on equiaxed dendritic growth in phase-field simulations of binary alloy

机译:二元合金相场模拟中温度边界条件对等轴枝晶生长的影响

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摘要

By the phase-field approach, the dendritic growth in binary alloy melt was simulated respectively using two types of temperature boundary conditions, i. e. , the constant temperature boundary by which the boundary temperature was fixed at the initial temperature, and Zero-Neumann temperature boundary. The influences of the temperature boundary conditions on numerical results are investigated. How to choose appropriate temperature boundary conditions is proposed. The results show that: 1) when the computation region is limited to a changeless size, the Zero-Neumann and constant temperature boundary conditions lead to the different dendritic growth behaviors, and the Zero-Neumann condition is preferable to the constant temperature condition; 2) when the computation region is enlarged continually with the computational time according to the increasing thermal diffusion scale, the two types of temperature boundary conditions achieve the consistent tip velocities and tip radii, and they both are appropriate choices.
机译:通过相场法,分别使用两种温度边界条件模拟了二元合金熔体中的枝晶生长。 e。 ,将边界温度固定在初始温度时所用的恒温边界以及零-诺依曼温度边界。研究了温度边界条件对数值结果的影响。提出了如何选择合适的温度边界条件。结果表明:1)当计算区域被限制为不变大小时,零-诺伊曼条件和恒温边界条件导致不同的树枝状生长行为,零-诺依曼条件优于恒温条件; 2)当计算区域随着热扩散尺度的增加而随着计算时间的增加而不断扩大时,两种类型的温度边界条件都实现了一致的叶尖速度和叶尖半径,它们都是合适的选择。

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