解耦(概率)
刚度
格子(音乐)
抗弯刚度
弯曲
计算机科学
抗弯刚度
结构工程
拓扑(电路)
材料科学
物理
声学
数学
工程类
控制工程
组合数学
作者
Yash Mistry,Oliver Weeger,Swapnil Morankar,Mandar Shinde,Siying Liu,Nikhilesh Chawla,Xiangfan Chen,Clint A. Penick,Dhruv Bhate
标识
DOI:10.1038/s43246-023-00363-6
摘要
Abstract Architected materials such as lattices are capable of demonstrating extraordinary mechanical performance. Lattices are often used for their stretch-dominated behavior, which gives them a high degree of stiffness at low-volume fractions. At the other end of the stiffness spectrum, bending-dominated lattices tend to be more compliant and are of interest for their energy absorption performance. Here, we report a class of ultra-compliant interwoven lattices that demonstrate up to an order of magnitude improvement in compliance over their traditional counterparts at similar volume fractions. This is achieved by selectively decoupling nodes and interweaving struts in bending-dominated lattices, inspired by observations of this structural principle in the lattice-like arrangement of the Venus flower basket sea sponge. By decoupling nodes in this manner, we demonstrate a simple and near-universal design strategy for modulating stiffness in lattice structures and achieve among the most compliant lattices reported in the literature.
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