论文标题
具有优势机械强度的拓扑设计的3D印刷体系结构
Topologically engineered 3D printed architectures with superior mechanical strength
论文作者
论文摘要
轻巧但具有卓越的机械性能的材料对于从飞机到家用电器的几种技术应用非常重要。轻量级材料可节省能源并减少制造所需的资源量。研究人员已经在寻求此类材料方面花费了重大努力,这些材料都需要在剪裁材料微观结构和结构设计中的新概念。利用新工程范式的架构材料最近成为创建所需宏观材料响应的定制组合的令人兴奋的途径。在某些情况下,相当独特的结构已经来自先进的几何概念(例如甲状腺,Menger Cubes或基于折纸/基里加米的结构),而其他创新则来自模仿生物启发的材料的自然,例如,蜂蜜B结构,Nacre,Nacre,Fish scales等。除了设计之外,增材制造能够使用计算机辅助设计模型来轻松地制造复杂的几何和生物启发的体系结构。这些结构上的模拟和实验的组合导致了机械性能的增强,包括强度,刚度和韧性。在这篇评论中,我们提供了拓扑设计的架构材料的视角,这些材料表现出最佳的机械行为,并且可以使用增材制造很容易打印。
Materials that are lightweight yet exhibit superior mechanical properties are of compelling importance for several technological applications that range from aircrafts to household appliances. Lightweight materials allow energy saving and reduce the amount of resources required for manufacturing. Researchers have expended significant efforts in the quest for such materials, which require new concepts in both tailoring material microstructure as well as structural design. Architectured materials, which take advantage of new engineering paradigms, have recently emerged as an exciting avenue to create bespoke combinations of desired macroscopic material responses. In some instances, rather unique structures have emerged from advanced geometrical concepts (e.g. gyroids, menger cubes, or origami/kirigami-based structures), while in others innovation has emerged from mimicking nature in bio-inspired materials (e.g. honeycomb structures, nacre, fish scales etc.). Beyond design, additive manufacturing has enabled the facile fabrication of complex geometrical and bio-inspired architectures, using computer aided design models. The combination of simulations and experiments on these structures has led to an enhancement of mechanical properties, including strength, stiffness and toughness. In this review, we provide a perspective on topologically engineered architectured materials that exhibit optimal mechanical behaviour and can be readily printed using additive manufacturing.