Delocalized Deformation Enhanced Reusable Energy Absorption Metamaterials Based on Bistable Tensegrity

张拉整体 超材料 双稳态 可重用性 材料科学 离域电子 吸收(声学) 机械能 变形(气象学) 掩蔽 纳米技术 复合材料 计算机科学 结构工程 光电子学 物理 工程类 功率(物理) 程序设计语言 量子力学 软件
作者
Hao Yang,Jie Zhang,Ji Wang,Jinbo Hu,Zhigang Wu,Fei Pan,Jianing Wu
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:35 (5) 被引量:39
标识
DOI:10.1002/adfm.202410217
摘要

Abstract Mechanical metamaterials are rationally designed structures possessing exceptional properties that can be manufactured by 3D printing techniques. Mechanical metamaterials provide an unprecedented platform for energy absorption, mitigating damage caused by severe localized impacts within confined areas. However, current designs always reveal deficiencies either in their energy absorption capacities or in their suitability for repetitive utilization. To address such limits, a novel bistable tensegrity structure with superior reusability is derived from a classical tensegrity structure, and a tensegrity‐based assembly strategy is proposed to construct these bistable structures into mechanical metamaterials with a delocalized deformation mechanism. Upon a localized impact on a single loading node, all the elastic components of each reusable bistable structure in the mechanical metamaterials stretch synchronously for energy absorption, exhibiting higher energy‐absorbing capacity. Here, the metamaterials achieve an energy‐absorbing capacity of 26.4 kJ (kg m 2 ) −1 over 10 000 cycles, outperforming other reusable materials by ≈2 orders of magnitude in energy‐absorbing capacity and reusability, respectively. This study provides a novel tensegrity‐based design assembly strategy for developing high‐capacity, reusable energy‐absorbing materials that are suitable for advanced impact protection and engineering systems.
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