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Phase-field model simulations of alloy directional solidification and seaweed-like microstructure evolution based on adaptive finite element method

机译:基于自适应有限元法的合金定向凝固和海藻状微观结构演化的相场模型模拟

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摘要

Based on the multi-grain growth phase field model of multi-element single-phase system, the adaptive finite element method using non-uniform grid is studied to solve the problem. The Al-4wt.%Cu binary alloy is taken as an example to study the planar solidification process and morphological evolution during the initial transition phase of solidification were studied under the condition of large computational domain and thin interfacial layer thickness. The effects of disturbance and anisotropy intensity on the microstructure of the solidification, the influence of physical parameters such as temperature gradient and cooling rate on the interface morphology growth and evolution were quantitatively analyzed. The growth mechanism of the interface morphology during directional solidification and the transformation mechanism of seaweed tissue were discussed. The results show that under the condition of low temperature gradient and high cooling rate, the flat interface is unstable and forms cell or dendrites, and then the tip is continuously split to form seaweed structure morphology. The adaptive finite element method is one order of magnitude lower in computing time and storage space comparing to the finite difference method. When the system size is larger, the superiority of the adaptive finite element method can be better reflected, which facilitates the simulation of the large-scale multi-field coupled phase field model.
机译:基于多元素单相系统的多颗粒生长阶段场模型,研究了使用非均匀网格的自适应有限元方法来解决问题。 Al-4wt。将%Cu二元合金作为示例,研究平面凝固过程,在大型计算结构域和薄界面厚度的条件下研究了凝固阶段的初始过渡过程中的形态学。扰动和各向异性强度对凝固微观结构的影响,物理参数诸如温度梯度和冷却速率的影响对界面形态生长和进化的影响。探讨了定向凝固过程中界面形态的生长机制及海藻组织的转化机制。结果表明,在低温梯度和高冷却速率的条件下,扁平界面是不稳定的并且形成细胞或树突,然后尖端连续分裂以形成海藻结构形态。自适应有限元方法是计算时间和存储空间中的一个量级,与有限差分方法相比。当系统尺寸较大时,可以更好地反映自适应有限元方法的优越性,这有利于大规模多场耦合相场模型的模拟。

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