Li Tiantian, Li Yaning
Department of Mechanical and Industrial Engineering, Northeastern University, Boston, MA02115, USA.
Adv Mater. 2024 Apr;36(15):e2309604. doi: 10.1002/adma.202309604. Epub 2024 Jan 10.
For artificial materials, desired properties often conflict. For example, engineering materials often achieve high energy dissipation by sacrificing resilience and vice versa, or desired auxeticity by losing their isotropy, which limits their performance and applications. To solve these conflicts, a strategy is proposed to create novel mechanical metamaterial via 3D space filling tiles with engaging key-channel pairs, exemplified via auxetic 3D keyed-octahedron-cuboctahedron metamaterials. This metamaterial shows high resilience while achieving large mechanical hysteresis synergistically under large compressive strain. Especially, this metamaterial exhibits ideal isotropy approaching the theoretical limit of isotropic Poisson's ratio, -1, as rarely seen in existing 3D mechanical metamaterials. In addition, the new class of metamaterials provides wide tunability on mechanical properties and behaviors, including an unusual coupled auxeticity and twisting behavior under normal compression. The designing methodology is illustrated by the integral of numerical modeling, theoretical analysis, and experimental characterization. The new mechanical metamaterials have broad applications in actuators and dampers, soft robotics, biomedical materials, and engineering materials/systems for energy dissipation.
对于人工材料而言,所需性能常常相互冲突。例如,工程材料常常通过牺牲弹性来实现高能量耗散,反之亦然,或者通过失去各向同性来获得所需的负泊松比,这限制了它们的性能和应用。为了解决这些冲突,我们提出了一种策略,即通过具有相互啮合的关键通道对的三维空间填充瓷砖来创建新型机械超材料,并以负泊松比三维键控八面体 - 立方八面体超材料为例进行说明。这种超材料在大压缩应变下协同实现大机械滞后的同时,还表现出高弹性。特别是,这种超材料展现出接近各向同性泊松比理论极限 -1 的理想各向同性,这在现有的三维机械超材料中很少见。此外,这类新型超材料在力学性能和行为方面具有广泛的可调性,包括在正常压缩下不寻常的耦合负泊松比和扭转行为。通过数值模拟、理论分析和实验表征相结合的方式阐述了设计方法。新型机械超材料在致动器和阻尼器、软体机器人、生物医学材料以及用于能量耗散的工程材料/系统等方面具有广泛应用。