Abas Muhammad, Awadh Mohammed Al, Habib Tufail, Noor Sahar
Department of Industrial Engineering, University of Engineering & Technology, Peshawar 25100, Pakistan.
Department of Industrial Engineering, King Khalid University, Farah 64231, Saudi Arabia.
Polymers (Basel). 2023 Sep 1;15(17):3633. doi: 10.3390/polym15173633.
In recent years, fused deposition modeling (FDM) based on material extrusion additive manufacturing technology has become widely accepted as a cost-effective method for fabricating engineering components with net-shapes. However, the limited exploration of the influence of FDM process parameters on surface roughness parameters, i.e., Ra (average surface roughness), Rq (root mean square surface roughness), and Rz (maximum height of the profile) across different sides (bottom, top, and walls) poses a challenge for the fabrication of functional parts. This research aims to bridge the knowledge gap by analyzing surface roughness under various process parameters and optimizing it for nylon carbon fiber printed parts. A definitive screening design (DSD) was employed for experimental runs. The Pareto chart highlighted the significant effects of layer height, part orientation, and infill density on all surface roughness parameters and respective sides. The surface morphology was analyzed through optical microscopy. Multi-response optimization was performed using an integrated approach of composited desirability function and entropy. The findings of the present study hold significant industrial applications, enhancing the quality and performance of 3D printed parts. From intricate prototypes to durable automotive components, the optimized surfaces contribute to production of functional and visually appealing products across various sectors.
近年来,基于材料挤出增材制造技术的熔融沉积建模(FDM)已被广泛认可为一种经济高效的制造净形工程部件的方法。然而,FDM工艺参数对不同面(底部、顶部和壁面)的表面粗糙度参数,即Ra(平均表面粗糙度)、Rq(均方根表面粗糙度)和Rz(轮廓最大高度)的影响探索有限,这对功能部件的制造构成了挑战。本研究旨在通过分析各种工艺参数下的表面粗糙度并对尼龙碳纤维打印部件进行优化来弥合知识差距。实验运行采用了确定性筛选设计(DSD)。帕累托图突出了层高、部件取向和填充密度对所有表面粗糙度参数及相应面的显著影响。通过光学显微镜分析了表面形态。使用复合合意度函数和熵的综合方法进行了多响应优化。本研究的结果具有重要的工业应用价值,可提高3D打印部件的质量和性能。从复杂的原型到耐用的汽车部件,优化后的表面有助于在各个领域生产出功能良好且外观吸引人的产品。