超材料
多稳态
材料科学
非线性系统
机械能
流离失所(心理学)
光电子学
传输(电信)
刚度
杠杆(统计)
软质材料
微型加热器
机械系统
纳米技术
光电开关
执行机构
辅助
软机器人
机械设计
声学超材料
纳米机电系统
机器人
变形(气象学)
变换光学
作者
Xianhua Yao,Zhiqiang Meng,Aoxi Wang,Yifan Wang,Nan Hu
标识
DOI:10.1002/adfm.202507732
摘要
Abstract Static non‐reciprocity, characterized by asymmetric responses to identical static loads, has attracted significant interest for its potential to enable one‐way transmission and directional control in various systems. Multistable mechanical metamaterials, engineered materials with tailored architectures capable of achieving multiple stable configurations under external stimuli, offer a promising platform for realizing tunable static non‐reciprocity. Here, a class of multistable metamaterials is introduced that leverage a self‐locking mechanism, integrating reentrant beams with thin beam‐shaped snap‐fit elements. Through the self‐locking of these snap‐fit elements, the metamaterial can achieve multiple, controllable, interlocked stable states. Its mechanical properties, including stiffness, strength, multistability, and deformation modes, can be precisely programmed by adjusting geometric parameters and component layouts. Furthermore, the compression‐induced interlocked stable configurations, combined with geometric asymmetries, enable the metamaterial to exhibit programmable static non‐reciprocity in displacement fields with nonlinear responses. The demonstrated versatility in multistability and programmable mechanical non‐reciprocity paves the way for applications in energy absorption and harvesting, soft devices, and robotics.
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