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Effects of fused filament fabrication parameters on the manufacturing of 316L stainless-steel components: geometric and mechanical properties

材料科学 喷嘴 熔丝制造 挤压 表面粗糙度 多孔性 制作 复合材料 烧结 3D打印 极限抗拉强度 模具(集成电路) 选择性激光烧结 收缩率 表面光洁度 相对密度 实验设计 金属粉末 选择性激光熔化 微观结构 冶金 金属 机械工程 纳米技术 医学 统计 替代医学 数学 病理 工程类
作者
M.A. Caminero,Ana Romero Gutiérrez,J.M. Chacón,Eustaquio García Plaza,Pedro José Núñez López
出处
期刊:Rapid Prototyping Journal [Emerald Publishing Limited]
卷期号:28 (10): 2004-2026 被引量:77
标识
DOI:10.1108/rpj-01-2022-0023
摘要

Purpose The extrusion-based additive manufacturing method followed by debinding and sintering steps can produce metal parts efficiently at a relatively low cost and material wastage. In this study, 316L stainless-steel metal filled filaments were used to print metal parts using the extrusion-based fused filament fabrication (FFF) approach. The purpose of this study is to assess the effects of common FFF printing parameters on the geometric and mechanical performance of FFF manufactured 316L stainless-steel components. Design/methodology/approach The microstructural characteristics of the metal filled filament, three-dimensional (3D) printed green parts and final sintered parts were analysed. In addition, the dimensional accuracy of the green parts was evaluated, as well as the hardness, tensile properties, relative density, part shrinkage and the porosity of the sintered samples. Moreover, surface quality in terms of surface roughness after sintering was assessed. Predictive models based on artificial neural networks (ANNs) were used for characterizing dimensional accuracy, shrinkage, surface roughness and density. Additionally, the response surface method based on ANNs was applied to represent the behaviour of these parameters and to identify the optimum 3D printing conditions. Findings The effects of the FFF process parameters such as build orientation and nozzle diameter were significant. The pore distribution was strongly linked to the build orientation and printing strategy. Furthermore, porosity decreased with increased nozzle diameter, which increased mechanical performance. In contrast, lower nozzle diameters achieved lower roughness values and average deviations. Thus, it should be noted that the modification of process parameters to achieve greater geometrical accuracy weakened mechanical performance. Originality/value Near-dense 316L austenitic stainless-steel components using FFF technology were successfully manufactured. This study provides print guidelines and further information regarding the impact of FFF process parameters on the mechanical, microstructural and geometric performance of 3D printed 316L components.
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