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Simulation of microstructure evolution in fused-coating additive manufacturing based on phase field approach

机译:基于相场法的熔覆增材制造中微观组织演化的仿真

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The mechanical properties of metal components are determined by the solidification behaviour and microstructure. A quantitative phase field model is used to investigate the microstructure evolution of fused-coating additive manufacturing, by which to improve the quality of deposition. During the fused-coating process, the molten metal in a crucible flows out of a nozzle and then reaches the substrate. The solidification happens at the moment when the molten metal comes into contact with substrate moving in three-dimensional space. The macroscopic heat transfer model of fused-coating is established to get the temperature field considered as the initial temperature boundary conditions in the phase field model. The numerical and experimental results show that the morphology of grains varies with different solidification environments. Columnar grains are observed during the early period at the bottom of fused-coating layer and the equiaxed grains appear subsequently ahead of the columnar grains. Columnar dendrites phase field simulations about the grains morphology and solute distribution are conducted considering the solidification environments. The simulation results are in good agreement with experimental results.
机译:金属部件的机械性能取决于凝固行为和微观结构。定量相场模型用于研究熔融涂层增材制造的微观结构演变,从而提高沉积质量。在熔融涂覆过程中,坩埚中的熔融金属从喷嘴流出,然后到达基材。凝固发生在熔融金属与在三维空间中移动的基材接触时。建立了熔融涂层的宏观传热模型,以将温度场视为相场模型中的初始温度边界条件。数值和实验结果表明,晶粒的形貌随凝固环境的不同而变化。早期在熔融涂层的底部观察到柱状晶粒,等轴晶粒随后出现在柱状晶粒之前。考虑凝固环境,进行了关于晶粒形态和溶质分布的柱状枝晶相场模拟。仿真结果与实验结果吻合良好。

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