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用于在振动下高度适应性和稳定地操纵不规则物体的仿生干粘合剂。

Bioinspired Dry Adhesives for Highly Adaptable and Stable Manipulating Irregular Objects under Vibration.

作者信息

Wang Duorui, Tian Hongmiao, Liu Haoran, Zhang Jinyu, Hu Hong, Li Xiangming, Wang Chunhui, Chen Xiaoliang, Shao Jinyou

机构信息

Micro-and Nano-Technology Research Center, State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, China.

Frontier Institute of Science and Technology (FIST), Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, China.

出版信息

Adv Sci (Weinh). 2023 Jul;10(21):e2302512. doi: 10.1002/advs.202302512. Epub 2023 May 7.

Abstract

For dry adhesive-based operation, highly adaptable and stable manipulation is important but also challenging, especially for irregular objects with complex surface (such as abrupt profile and acute projection) under vibration-inducing environments. Here, a multi-scale adhesive structure, with mechanically isolated energy-absorbing backing, based on the synergistic action of microscale contact end (seta), mesoscale supporting layer (lamella), and macroscopic backing (muscle tissues) of gecko's sole, is proposed. Top layer of mushroom-like micro tips provides dry adhesion via mimicking gecko's seta, and bottom layer of physical cuts and porous feature achieves the interfacial mechanical decoupling and crack inhibition via mimicking the non-continuous distributing of lamella and compliance of muscle. The proposed dry adhesive exhibits excellent adaptable adhesion to various objects with curved or irregular surfaces, even for that with abrupt contours, as well as an amazing stable anti-vibration ability, opening a new avenue for the development of dry adhesive-based device or system.

摘要

对于基于干粘合剂的操作而言,高度适应性和稳定的操控性很重要,但也具有挑战性,特别是对于在振动环境下具有复杂表面(如轮廓突变和尖锐凸起)的不规则物体。在此,基于壁虎脚掌的微观接触末端(刚毛)、中观支撑层(薄片)和宏观背衬(肌肉组织)的协同作用,提出了一种具有机械隔离能量吸收背衬的多尺度粘合剂结构。蘑菇状微尖端的顶层通过模仿壁虎刚毛提供干附着力,而物理切口和多孔特征的底层通过模仿薄片的非连续分布和肌肉的柔顺性实现界面机械解耦和裂纹抑制。所提出的干粘合剂对各种具有弯曲或不规则表面的物体,甚至对具有突变轮廓的物体都表现出优异的适应性附着力,以及惊人的稳定抗振能力,为基于干粘合剂的装置或系统的开发开辟了一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb77/10375138/b7cc42d38028/ADVS-10-2302512-g004.jpg

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