Diniță Alin, Neacșa Adrian, Portoacă Alexandra Ileana, Tănase Maria, Ilinca Costin Nicolae, Ramadan Ibrahim Naim
Mechanical Engineering Department, Petroleum-Gas University of Ploiești, 100680 Ploiesti, Romania.
Materials (Basel). 2023 Jun 26;16(13):4610. doi: 10.3390/ma16134610.
Additive manufacturing (AM) comes in various types of technologies and comparing it with traditional fabrication methods provides the possibility of producing complex geometric parts directly from Computer-Aided Designs (CAD). Despite answering challenges such as poor workability and the need for tooling, the anisotropy of AM constructions is the most serious issue encountered by their application in industry. In order to enhance the microstructure and functional behavior of additively fabricated samples, post-processing treatments have gained extensive attention. The aim of this research is to provide critical, comprehensive, and objective methods, parameters and results' synthesis for post-processing treatments applied to AM builds obtained by 3D printing technologies. Different conditions for post-processing treatments adapted to AM processes were explored in this review, and demonstrated efficiency and quality enhancement of parts. Therefore, the collected results show that mechanical characteristics (stress state, bending stress, impact strength, hardness, fatigue) have undergone significant improvements for 3D composite polymers, copper-enhanced and aluminum-enhanced polymers, shape memory alloys, high-entropy alloys, and stainless steels. However, for obtaining a better mechanical performance, the research papers analyzed revealed the crucial role of related physical characteristics: crystallinity, viscosity, processability, dynamic stability, reactivity, heat deflection temperature, and microstructural structure.
增材制造(AM)有多种技术类型,将其与传统制造方法进行比较,可以直接从计算机辅助设计(CAD)生产复杂几何形状的零件。尽管解决了诸如加工性差和对工具的需求等挑战,但增材制造结构的各向异性是其在工业应用中遇到的最严重问题。为了增强增材制造样品的微观结构和功能行为,后处理已受到广泛关注。本研究的目的是为应用于通过3D打印技术获得的增材制造构件的后处理提供关键、全面和客观的方法、参数及结果综合。本综述探讨了适用于增材制造工艺的后处理的不同条件,并展示了零件的效率和质量提升。因此,收集的结果表明,3D复合聚合物、铜增强和铝增强聚合物、形状记忆合金、高熵合金和不锈钢的机械特性(应力状态、弯曲应力、冲击强度、硬度、疲劳)有了显著改善。然而,为了获得更好的机械性能,分析的研究论文揭示了相关物理特性的关键作用:结晶度、粘度、加工性、动态稳定性、反应性、热变形温度和微观结构。