Dey Arup, Ramoni Monsuru, Yodo Nita
Department of Computer Science and Engineering Technology, Valdosta State University, Valdosta, GA 31698, USA.
Department of Manufacturing and Industrial Engineering, The University of Texas Rio Grande Valley, Edinburg, TX 78539, USA.
Materials (Basel). 2024 Jul 25;17(15):3675. doi: 10.3390/ma17153675.
Fused filament fabrication (FFF) is a key extrusion-based additive manufacturing (AM) process for fabricating components from polymers and their composites. Functionally gradient materials (FGMs) exhibit spatially varying properties by modulating chemical compositions, microstructures, and design attributes, offering enhanced performance over homogeneous materials and conventional composites. These materials are pivotal in aerospace, automotive, and medical applications, where the optimization of weight, cost, and functional properties is critical. Conventional FGM manufacturing techniques are hindered by complexity, high costs, and limited precision. AM, particularly FFF, presents a promising alternative for FGM production, though its application is predominantly confined to research settings. This paper conducts an in-depth review of current FFF techniques for FGMs, evaluates the limitations of traditional methods, and discusses the challenges, opportunities, and future research trajectories in this emerging field.
熔丝制造(FFF)是一种基于挤出的关键增材制造(AM)工艺,用于由聚合物及其复合材料制造部件。功能梯度材料(FGM)通过调节化学成分、微观结构和设计属性呈现出空间变化的特性,与均质材料和传统复合材料相比具有更高的性能。这些材料在航空航天、汽车和医疗应用中至关重要,在这些领域中,重量、成本和功能特性的优化至关重要。传统的FGM制造技术受到复杂性、高成本和有限精度的阻碍。增材制造,特别是FFF,为FGM生产提供了一种有前途的替代方法,尽管其应用主要局限于研究环境。本文对当前用于FGM的FFF技术进行了深入综述,评估了传统方法的局限性,并讨论了这一新兴领域的挑战、机遇和未来研究方向。