Behseresht Saeed, Park Young Ho, Love Allen, Valdez Pastrana Omar Alejandro
Department of Mechanical and Aerospace Engineering, New Mexico State University, Las Cruces, NM 88003, USA.
Materials (Basel). 2024 Aug 23;17(17):4185. doi: 10.3390/ma17174185.
Additive manufacturing (AM) is not necessarily a new process but an advanced method for manufacturing complex three-dimensional (3D) parts. Among the several advantages of AM are the affordable cost, capability of building objects with complex structures for small-batch production, and raw material versatility. There are several sub-categories of AM, among which is fused filament fabrication (FFF), also commonly known as fused deposition modeling (FDM). FFF has been one of the most widely used additive manufacturing techniques due to its cost-efficiency, simplicity, and widespread availability. The FFF process is mainly used to create 3D parts made of thermoplastic polymers, and complex physical phenomena such as melt flow, heat transfer, solidification, crystallization, etc. are involved in the FFF process. Different techniques have been developed and employed to analyze these phenomena, including experimental, analytical, numerical, and finite element analysis (FEA). This study specifically aims to provide a comprehensive review of the developed numerical models and simulation tools used to analyze melt flow behavior, heat transfer, crystallization and solidification kinetics, structural analysis, and the material characterization of polymeric components in the FFF process. The strengths and weaknesses of these numerical models are discussed, simplifications and assumptions are highlighted, and an outlook on future work in the numerical modeling and FE simulation of FFF is provided.
增材制造(AM)不一定是一个新过程,而是一种制造复杂三维(3D)零件的先进方法。增材制造的几个优点包括成本低廉、能够制造具有复杂结构的物体用于小批量生产以及原材料的通用性。增材制造有几个子类别,其中包括熔丝制造(FFF),也通常称为熔融沉积建模(FDM)。由于其成本效益、简单性和广泛可用性,FFF一直是最广泛使用的增材制造技术之一。FFF工艺主要用于制造由热塑性聚合物制成的3D零件,并且该工艺涉及诸如熔体流动、传热、凝固、结晶等复杂的物理现象。已经开发并采用了不同的技术来分析这些现象,包括实验、分析、数值和有限元分析(FEA)。本研究的具体目的是全面综述用于分析FFF工艺中熔体流动行为、传热、结晶和凝固动力学、结构分析以及聚合物部件材料表征的已开发数值模型和模拟工具。讨论了这些数值模型的优点和缺点,突出了简化和假设,并对FFF数值建模和有限元模拟的未来工作进行了展望。