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Microstructure and mechanical properties of stainless steel 316L vertical struts manufactured by laser powder bed fusion process

机译:激光粉末床熔合工艺制造的316L不锈钢立式支柱的组织和力学性能

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Stainless steel 316L (SS316L) vertical struts with various diameters ranging from 0.25 mm to 5 mm were manufactured by laser powder bed fusion (LPBF) process. A systematic investigation was conducted on the microstructure and mechanical properties of the produced struts. The struts possessed hierarchical microstructures consisting of cellular sub-grain structures inside columnar grains. The primary dendrite arm spacing (PDAS) of the cellular sub-grains decreased monotonically with increasing strut diameter until reaching a plateau after 1 mm. In contrast, the columnar grain width did not show a clear relationship with respect to the variation in the strut diameter. A <110> to <100> texture transition along the building direction (BD) of the struts was observed as the strut diameter decreased from 5 mm to 0.25 mm, which was attributed to the change of the heat extraction direction. Microstructure-property relations were established via Hall-Petch type correlations between the PDAS and the microhardness as well as the PDAS and the strengths of the struts, suggesting the importance of the role played by the cellular sub-grain structures in the strengthening of LPBF manufactured SS316L. Electron backscatter diffraction (EBSD) analysis confirmed that the strong <110> texture within the thicker struts promoted the twinning-induced plasticity, and thus resulted in a better strength-ductility combination compared with that of the thinner struts with <100> texture or weak <110> texture.
机译:通过激光粉末床熔合(LPBF)工艺制造了直径范围从0.25mm至5mm的316L不锈钢(SS316L)垂直支柱。对生产的支柱的微观结构和力学性能进行了系统的研究。支柱具有由柱状晶粒内部的蜂窝状亚晶粒结构组成的分级微观结构。随着支杆直径的增加,蜂窝状亚晶粒的主要枝晶臂间距(PDAS)单调减少,直到在1毫米后达到平稳。相反,柱状晶粒宽度与支柱直径的变化没有明显的关系。当支柱直径从5 mm减小到0.25 mm时,沿着支柱的构建方向(BD)观察到<110>到<100>的纹理过渡,这归因于吸热方向的变化。通过PDAS与显微硬度以及PDAS和支柱的强度之间的Hall-Petch类型相关性建立了微结构与属性的关系,这表明细胞亚晶粒结构在增强制造的LPBF中的作用很重要SS316L。电子背散射衍射(EBSD)分析证实,较厚的支撑杆中较强的<110>织构促进了孪晶诱导的可塑性,因此与具有<100>的支撑杆或较薄的支撑构件相比,其强度-延展性更好。 <110>质感。

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