de la Rosa Sergio, Mayuet Ares Pedro F, Rodríguez-Parada Lucía
Department of Mechanical Engineering and Industrial Design, Faculty Engineering, University of Cadiz, 11003 Puerto Real, Cádiz, Spain.
Polymers (Basel). 2025 Apr 22;17(9):1133. doi: 10.3390/polym17091133.
This study presents a comparative analysis of the influence of open-cell and closed-cell topologies on the manufacturing quality and resultant elasticity of 3D printed thermoplastic polyurethane (TPU) lattice structures. Lattice samples were designed based on various open-cell and closed-cell configurations, varying in unit cell size and fabricated using extrusion-based additive manufacturing (AM) techniques. A microscopic analysis was conducted to assess manufacturing defects, while mechanical compression tests were performed to characterize the elasticity of the samples. The correlation between the obtained results enabled the evaluation of the relationship between the manufacturability of lattice topologies and their stiffness. The findings reveal substantial differences in the manufacturability of the topologies, with open-cell structures exhibiting more pronounced defects. Additionally, the unit cell size and the resulting density of the samples were found to provide design advantages, as closed-cell topologies demonstrated superior load resistance. The accumulation of manufacturing defects was identified as a critical factor influencing deviations in stiffness measurements. This study establishes a foundational framework for lattice structural design, emphasizing the impact of cell topology and unit cell size on mechanical performance. The significance of this research lies in its contribution to the optimization of 3D printed TPU-based lattice structures, providing valuable insights for product design applications.
本研究对开孔和闭孔拓扑结构对3D打印热塑性聚氨酯(TPU)晶格结构的制造质量和所得弹性的影响进行了比较分析。基于各种开孔和闭孔配置设计了晶格样品,其单胞尺寸各不相同,并使用基于挤出的增材制造(AM)技术进行制造。进行了微观分析以评估制造缺陷,同时进行了机械压缩试验以表征样品的弹性。所得结果之间的相关性使得能够评估晶格拓扑结构的可制造性与其刚度之间的关系。研究结果揭示了拓扑结构在可制造性方面存在显著差异,开孔结构表现出更明显的缺陷。此外,发现样品的单胞尺寸和由此产生的密度具有设计优势,因为闭孔拓扑结构表现出更好的抗负载能力。制造缺陷的积累被确定为影响刚度测量偏差的关键因素。本研究为晶格结构设计建立了一个基础框架,强调了胞拓扑结构和单胞尺寸对机械性能的影响。这项研究的意义在于其对优化基于3D打印TPU的晶格结构的贡献,为产品设计应用提供了有价值的见解。