Gecko-Inspired Intelligent Adhesive Structures for Rough Surfaces.

IF 10.7 1区 综合性期刊 Q1 Multidisciplinary Research Pub Date : 2025-02-25 eCollection Date: 2025-01-01 DOI:10.34133/research.0630
Yawen Shao, Miao Li, Hongmiao Tian, Fabo Zhao, Jian Xu, Hongrong Hou, Zhijun Zhang, Duorui Wang, Xiaoliang Chen, Wenjun Li, Hongjian Yan, Jinyou Shao
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Abstract

Biomimetic dry adhesive structures, inspired by geckos' climbing abilities, have attracted research attention in recent years. However, achieving superior adhesion on a rough surface remains an important challenge, which limits practical applications. Conventional bionic adhesion methods perform well on smooth surfaces, but adhesion strength drastically decreases on rough surfaces due to the reduced contact area. Generally, various adhesive structures have been proposed to increase the contact area without assessing adhesion states, against obtaining good performance on rough surfaces. If an intelligent adhesive approach could be introduced on rough surfaces, it would be beneficial for promoting the development of gecko-inspired adhesives. However, existing adhesive structures with the sensing function usually utilize the adhesive function to support the sensing function, i.e., a sensor with an adhesive function; for other few structures, the sensing function supports adhesion, but they do not focus on improving adhesion performance on rough surfaces. Inspired by the synergistic effect of a kinematic system during the crawling process of geckos, this study proposes an intelligent adhesive structure for rough surfaces. The proposed structure combines a hierarchical bionic dry adhesive structure based on gecko paw microhairs with a flexible capacitive sensor unit. Experimental observations and analytical modeling demonstrate that incorporating mushroom-shaped bionic dry adhesive structures with inclined support micropillars can reduce interface contact stiffness, notably enhancing adhesion on rough surfaces while allowing real-time monitoring of contact states. Moreover, this innovative smart adhesive structure facilitates morphology sensing of contact interfaces, presenting potential advancements in bionic adhesion for morphology sensing applications.

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受壁虎启发的粗糙表面智能粘接结构。
受壁虎攀爬能力的启发,仿生干胶结构近年来引起了人们的关注。然而,在粗糙表面上获得优异的附着力仍然是一个重要的挑战,这限制了实际应用。传统的仿生粘附方法在光滑表面上表现良好,但由于接触面积减少,在粗糙表面上的粘附强度急剧下降。一般来说,为了增加接触面积而不评估粘附状态,人们提出了各种粘附结构,以防止在粗糙表面上获得良好的性能。如果能在粗糙表面上引入智能粘接方法,将有利于促进壁虎型胶粘剂的发展。然而,现有的具有传感功能的粘附结构通常利用粘附功能来支持传感功能,即具有粘附功能的传感器;对于其他少数结构,传感功能支持粘附,但他们不专注于提高粗糙表面的粘附性能。受壁虎爬行过程中运动系统协同效应的启发,本研究提出了一种针对粗糙表面的智能粘附结构。该结构结合了基于壁虎爪微毛的分层仿生干胶结构和柔性电容式传感器单元。实验观察和分析模型表明,将蘑菇形仿生干胶粘剂结构与倾斜支撑微柱结合可以降低界面接触刚度,显著增强粗糙表面的粘附力,同时可以实时监测接触状态。此外,这种创新的智能粘合剂结构促进了接触界面的形态传感,为形态传感应用的仿生粘附提供了潜在的进展。
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来源期刊
Research
Research Multidisciplinary-Multidisciplinary
CiteScore
13.40
自引率
3.60%
发文量
0
审稿时长
14 weeks
期刊介绍: Research serves as a global platform for academic exchange, collaboration, and technological advancements. This journal welcomes high-quality research contributions from any domain, with open arms to authors from around the globe. Comprising fundamental research in the life and physical sciences, Research also highlights significant findings and issues in engineering and applied science. The journal proudly features original research articles, reviews, perspectives, and editorials, fostering a diverse and dynamic scholarly environment.
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