Okugawa Masayuki, Furushiro Yuya, Koizumi Yuichiro
Division of Materials and Manufacturing Science, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan.
Anisotropic Design & Additive Manufacturing Research Center, Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan.
Materials (Basel). 2022 Sep 2;15(17):6092. doi: 10.3390/ma15176092.
Al alloy parts fabricated by powder bed fusion (PBF) have attracted much attention because of the degrees of freedom in both shapes and mechanical properties. We previously reported that the Si regions in Al-Si alloy that remain after the rapid remelting process in PBF act as intrinsic heterogeneous nucleation sites during the subsequent resolidification. This suggests that the Si particles are crucial for a novel grain refinement strategy. To provide guidelines for grain refinement, the effects of solidification, remelting, and resolidification conditions on microstructures were investigated by multiphase-field simulation. We revealed that the resolidification microstructure is determined by the size and number of Si regions in the initial solidification microstructures and by the threshold size for the nucleation site, depending on the remelting and resolidification conditions. Furthermore, the most refined microstructure with the average grain size of 4.8 µm is predicted to be formed under conditions with a large temperature gradient of = 10 K/m in the initial solidification, a high heating rate of = 10 K/s in the remelting process, and a fast solidification rate of = 10 m/s in the resolidification process. Each of these conditions is necessary to be considered to control the microstructures of Al-Si alloys fabricated via PBF.
通过粉末床熔融(PBF)制造的铝合金部件因其在形状和机械性能方面的自由度而备受关注。我们之前报道过,在PBF的快速重熔过程后残留的Al-Si合金中的Si区域在随后的再凝固过程中充当内在的异质形核位点。这表明Si颗粒对于一种新型的晶粒细化策略至关重要。为了提供晶粒细化的指导方针,通过多相场模拟研究了凝固、重熔和再凝固条件对微观结构的影响。我们发现,再凝固微观结构取决于初始凝固微观结构中Si区域的尺寸和数量以及形核位点的临界尺寸,这取决于重熔和再凝固条件。此外,预计在初始凝固时具有10 K/m的大温度梯度、重熔过程中10 K/s的高加热速率以及再凝固过程中10 m/s的快速凝固速率的条件下会形成平均晶粒尺寸为4.8 µm的最细化微观结构。要控制通过PBF制造的Al-Si合金的微观结构,必须考虑这些条件中的每一个。