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Filament extrusion-based additive manufacturing of 316L stainless steel: Effects of sintering conditions on the microstructure and mechanical properties

机译:基于长丝挤出的316L不锈钢增材制造:烧结条件对微观组织和力学性能的影响

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摘要

Filament extrusion-based additive manufacturing of metals offers an alternative to the widespread beam-based counterparts. The microstructure obtained from extrusion-based techniques differs greatly from the ones obtained by beam-based additive manufacturing, as a sintering process is used, in contrast to the rapid solidification of a melt pool. In this study, the microstructure of 316L stainless steel fabricated by filament extrusion is investigated as a function of debinding and sintering conditions. High-speed nanoindentation correlated with energy-dispersive X-ray mapping is employed for microstructural characterization. High sintering temperatures of 1350℃, an atmosphere of pure H_2, and a cooling rate of 60 K/m are found to result in the optimal microstructure. High densities are obtained due to accelerated densification, enabled by the introduction of diffusion paths due to δ-ferrite formation. At the same time, hard phases like oxides or σ-precipitates with detrimental effects on the mechanical properties can be avoided. It is shown that the porosity can be quantified by analysis of hardness and modulus data from nanoindentation mapping. The values obtained are in good agreement with optical and Archimedes immersion method measurements. Tensile tests of 3D-printed and sintered specimens show excellent ductility and strength in comparison to literature. We demonstrate that 3D printing of 316L filaments and sintering with the optimized conditions results in material properties comparable to bulk values.
机译:灯丝extrusion-based添加剂制造金属提供了一个广泛的替代品beam-based同行。从extrusion-based获得技术不同beam-based获得的很大的加法制造,烧结过程使用,相比之下的快速凝固一个熔池。316 l不锈钢长丝臆造出来的挤压是调查的函数脱脂和烧结条件。nanoindentation与能量分散x射线映射是用于微观结构鉴定。1350℃,纯H_2的氛围,和冷却率60 K / m发现导致最优微观结构。加快致密化,启用的引入扩散路径由于δ铁素体形成。氧化物或σ沉淀有不利影响在机械性能是可以避免的。表明,孔隙度可以量化吗硬度和模量的数据分析nanoindentation映射。在良好的协议与光学和阿基米德液浸法测量。3 d打印和烧结标本显示优秀延性和强度相比文学。316 l丝和烧结优化条件导致材料特性与大部分价值。

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