Shakeri Zohreh, Benfriha Khaled, Shirinbayan Mohammadali, Ahmadifar Mohammad, Tcharkhtchi Abbas
Arts et Metiers Institute of Technology, CNAM, PIMM, HESAM University, F-75013 Paris, France.
Arts et Metiers Institute of Technology, CNAM, LCPI, HESAM University, F-75013 Paris, France.
Polymers (Basel). 2021 Oct 27;13(21):3697. doi: 10.3390/polym13213697.
Fused filament fabrication (FFF) is a layer-by-layer additive manufacturing (AM) process for producing parts. For industries to gain a competitive advantage, reducing product development cycle time is a basic goal. As a result, industries' attention has turned away from traditional product development processes toward rapid prototyping techniques. Because different process parameters employed in this method significantly impact the quality of FFF manufactured parts, it is essential to optimize FFF process parameters to enhance component quality. The paper presents optimization of fused filament fabrication process parameters to improve the shape deviation such as cylindricity and circularity of 3D printed parts with the Taguchi optimization method. The effect of thickness, infill pattern, number of walls, and layer height was investigated as variable parameters for experiments on cylindricity and circularity. The MarkForged used Nylon White (PA6) to create the parts. ANOVA and the S/N ratio are also used to evaluate and optimize the influence of chosen factors. As a result, it was concluded that the hexagonal infill pattern, the thickness of 5 mm, wall layer of 2, and a layer height of 1.125 mm were known to be the optimal process parameters for circularity and cylindricity in experiments. Then a linear regression model was created to observe the relationship between the control variables with cylindricity and circularity. The results were confirmed by a confirmation test.
熔丝制造(FFF)是一种用于生产零件的逐层增材制造(AM)工艺。为了使行业获得竞争优势,缩短产品开发周期是一个基本目标。因此,行业的关注点已从传统产品开发流程转向快速成型技术。由于该方法中使用的不同工艺参数会显著影响FFF制造零件的质量,因此优化FFF工艺参数以提高零件质量至关重要。本文采用田口优化方法对熔丝制造工艺参数进行优化,以改善3D打印零件的形状偏差,如圆柱度和圆度。研究了厚度、填充图案、壁数和层高作为圆柱度和圆度实验的可变参数的影响。MarkForged公司使用尼龙白色(PA6)来制造零件。方差分析和信噪比也用于评估和优化所选因素的影响。结果表明,在实验中,六边形填充图案、5毫米的厚度、2层壁和1.125毫米的层高是圆柱度和圆度的最佳工艺参数。然后建立了线性回归模型,以观察控制变量与圆柱度和圆度之间的关系。通过验证试验对结果进行了验证。