Polymer-based functionally graded multi-material additive manufacturing via material extrusion: Interfacial mechanisms and gradient design strategies

制作 材料科学 材料性能 挤压 机械工程 材料设计 过程(计算) 材料选择 纳米技术 计算机科学 梯度材料 拓扑优化 材料效率 工程设计过程 3D打印 聚合物 结构材料 工艺工程 塑料挤出 设计过程 设计要素和原则 材料加工 制造工程 系统工程 领域(数学) 过程控制 表征(材料科学)
作者
G A munshi,Venkatesh M. Kulkarni
出处
期刊: [Elsevier BV]
卷期号:12: 102118-102118
标识
DOI:10.1016/j.nxmate.2026.102118
摘要

Due to their ability to achieve spatially varying material and enhanced mechanical properties, reduce stress concentration and enable multifunctional behaviour within a single component, the functionally graded multi-materials (FGMMs) have attracted significant attention in additive manufacturing (AM). Among the various AM techniques, material extrusion (MEX) has emerged as a promising approach for the fabrication of graded polymer systems because of its accessibility, material versatility and capability for multi-material processing. This study provides a unified process-structure-property framework of the recent developments in the fabrication of FGMM structures using MEX-AM. The study examines fundamental concepts of functionally graded materials (FGMs), operating principles of material fabrication and different strategies for achieving graded structures, including variations in material composition, structural geometry and lattice architectures. Recent research on multi-material extrusion systems, co-extrusion techniques and gradient control methods was also summarised. Furthermore, key application areas demonstrating the significant potential, including lightweight structural components, energy absorption structures, biomedical implants and soft robotic systems, were discussed. Additionally, the advantages of graded architectures in enhancing mechanical, structural and functional performance and the major challenges associated with such as interfacial bonding, material compatibility, process limitations and design complexity were analysed, respectively. Finally, future research opportunities with emphasis on advanced multi-material extrusion technologies, computational design and optimisation methods, machine learning-assisted material design and the development of sustainable graded polymer systems were identified and discussed. Overall, this study highlights the growing importance of MEX-based AM in enabling the design and fabrication of next-generation FGMM structures for advanced engineering applications.

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