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具有卓越强度的钛基多拓扑超材料

Titanium Multi-Topology Metamaterials with Exceptional Strength.

作者信息

Noronha Jordan, Dash Jason, Rogers Jason, Leary Martin, Brandt Milan, Qian Ma

机构信息

Centre for Additive Manufacturing, School of Engineering, RMIT University, Melbourne, VIC, 3000, Australia.

出版信息

Adv Mater. 2024 Aug;36(34):e2308715. doi: 10.1002/adma.202308715. Epub 2024 Jan 7.

DOI:10.1002/adma.202308715
PMID:38160263
Abstract

Additively manufactured metamaterials are architectured cellular materials that can be engineered through structural innovations to achieve unusual mechanical and multifunctional properties. Among these, hollow-strut lattice (HSL) metamaterials have proven to allow outstanding structural efficiency, with a multifunctional architecture ideal for lightweight, biomedical, microfluidic, and thermal engineering. To capitalize on their structural efficiency and significantly extend their mechanical envelope, a thin-plate lattice topology is seamlessly integrated into the inner hollow space of an HSL topology. This integration serves a dual purpose: to radically enhance the resistance of the irregular HSL nodes to deformation and to uniformly distribute the applied stresses in the new topology for unparalleled strength. Fabricated in titanium alloy Ti-6Al-4V with densities of 1.0-1.8 g cm , this thin-plate integrated hollow-strut lattice (TP-HSL) metamaterials achieve relative yield strength that well surpasses the empirical upper limit of all cellular metals, including HSL and solid-strut lattice (SSL) metamaterials made from various metallic alloys. Furthermore, their absolute yield strength drastically exceeds that of magnesium alloys with comparable densities while inheriting the high corrosion resistance, biocompatibility, heat resistance, and other unique attributes of Ti-6Al-4V. Titanium multi-topology metamaterials expand the boundaries of lightweight multifunctional metallic materials.

摘要

增材制造的超材料是一种具有特定结构的多孔材料,可通过结构创新进行设计,以实现不同寻常的机械性能和多功能特性。其中,空心支柱晶格(HSL)超材料已被证明具有出色的结构效率,其多功能结构非常适合轻量化、生物医学、微流体和热工程领域。为了利用其结构效率并显著扩展其力学性能范围,一种薄板晶格拓扑结构被无缝集成到HSL拓扑结构的内部空心空间中。这种集成具有双重目的:从根本上提高不规则HSL节点的抗变形能力,并在新拓扑结构中均匀分布所施加的应力,从而获得无与伦比的强度。这种薄板集成空心支柱晶格(TP-HSL)超材料采用密度为1.0-1.8 g/cm³的钛合金Ti-6Al-4V制造,其相对屈服强度远远超过所有多孔金属的经验上限,包括由各种金属合金制成的HSL和实心支柱晶格(SSL)超材料。此外,它们的绝对屈服强度大幅超过密度相当的镁合金,同时继承了Ti-6Al-4V的高耐腐蚀性、生物相容性、耐热性和其他独特属性。钛多拓扑超材料扩展了轻质多功能金属材料的边界。

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