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3D Thermal Finite Element Analysis of the SLM 316L Parts with Microstructural Correlations

机译:具有微结构相关性的SLM 316L零件的3D热有限元分析

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In this study, a multitrack and multilayer finite element model was developed to simulate the temperature field and molten pool contours during selective laser melting (SLM) of 316L stainless steel powder under different scanning strategies. The simulated temperature field and its evolution over time were compared with experimental measurement results. Furthermore, a correlation was established by the presented results between the predicted thermal behavior and the microstructure of SLM specimens. It was found that the maximum temperature of the molten pool rose slightly with the increase of scanning tracks, but when laser scanned multilayer, the maximum temperature rose first and then decreased. There are large columnar crystals in molten pools, growing in the direction of the maximum temperature gradient. The microstructure defects are more likely to occur at the bonding regions between adjacent layers and islands, where the heat and stress are concentrated. Moreover, the results also showed that the scanning strategy affects the microstructure and microhardness. Also, the SLM 316L parts under the S-shaped strategy had finer grains and a higher Vicker hardness than that formed under the island strategy.
机译:在这项研究中,建立了一个多轨和多层有限元模型来模拟在不同扫描策略下对316L不锈钢粉末进行选择性激光熔化(SLM)时的温度场和熔池轮廓。将模拟温度场及其随时间的变化与实验测量结果进行了比较。此外,通过预测的热行为与SLM试样的微观结构之间的呈现结果建立了相关性。结果发现,熔池的最高温度随扫描轨迹的增加而略有上升,但是当激光扫描多层膜时,最高温度先上升然后下降。熔池中有大的柱状晶体,在最大温度梯度的方向上生长。微观结构缺陷更可能发生在热量和应力集中的相邻层和岛之间的结合区域。此外,结果还表明,扫描策略会影响显微组织和显微硬度。此外,与岛形策略相比,S形策略下的SLM 316L零件具有更细的晶粒和更高的维氏硬度。

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