Adhesive contact mechanics of bio-inspired pillars: Exploring hysteresis and detachment modes

被引:3
作者
Violano, G. [1 ]
Dibitonto, S. [1 ]
Afferrante, L. [1 ]
机构
[1] Polytech Univ Bari, Dept Mech Math & Management, Via E Orabona 4, I-70125 Bari, Italy
关键词
Adhesion; Mushroom pillar; Finite element method; Crack propagation; Soft adhesives; Adhesive hysteresis; ASPECT RATIO; STIFFNESS; SURFACES; FORCE; SHAPE;
D O I
10.1016/j.ijadhadh.2024.103768
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Engineering technologies frequently draw inspiration from nature, as exemplified in bio-inspired adhesive surfaces. These surfaces present textures adorned by pillars, mimicking the topography found on the pads of certain animals renowned for their exceptional adhesive capabilities. The adhesive response is strongly influenced by the morphology of these pillars. In typical existing models, perfect bonding conditions are assumed between the pillar and the countersurface, and solely the detachment process of the pillar from the countersurface is investigated. The proposed model, based on the assumption that interactions at the interface are governed by van der Waals forces modeled by the Lennard-Jones potential law, enables the examination of the entire approach and retraction cycle, tracking the movement of the pillar towards and away from the countersurface. Our findings reveal that adhesive contact mechanics is primarily influenced by the geometry of the pillar and the potential presence of interfacial 'defects', which in turn affect the distribution of contact pressure. Furthermore, we show that the detachment process may simultaneously involve various modes of separation, such as crack propagation from outer edge, crack propagation from inner defects, and uniform decohesion. This suggests that existing theoretical models alone cannot fully elucidate the complexity of detachment phenomena. Additionally, we anticipate the occurrence of hysteretic losses during the approach-retraction cycle, attributed to pull-in and pull-off contact jumps. Adhesive hysteresis is a phenomenon consistently observed in experiments but frequently overlooked in existing models.
引用
收藏
页数:8
相关论文
共 39 条
[21]   Bio-inspired dual-adhesive particles from microfluidic electrospray for bone regeneration [J].
Yang, Lei ;
Wang, Xiaocheng ;
Yu, Yunru ;
Shang, Luoran ;
Xu, Wei ;
Zhao, Yuanjin .
NANO RESEARCH, 2023, 16 (04) :5292-5299
[22]   Bio-inspired dual-adhesive particles from microfluidic electrospray for bone regeneration [J].
Lei Yang ;
Xiaocheng Wang ;
Yunru Yu ;
Luoran Shang ;
Wei Xu ;
Yuanjin Zhao .
Nano Research, 2023, 16 :5292-5299
[23]   Superhydrophobic gecko feet with high adhesive forces towards water and their bio-inspired materials [J].
Liu, Kesong ;
Du, Jiexing ;
Wu, Juntao ;
Jiang, Lei .
NANOSCALE, 2012, 4 (03) :768-772
[24]   Controlling Hydrogel Mechanics via Bio-Inspired Polymer-Nanoparticle Bond Dynamics [J].
Li, Qaochu ;
Barret, Devin G. ;
Messersmith, Phillip B. ;
Holten-Andersen, Niels .
ACS NANO, 2016, 10 (01) :1317-1324
[25]   A nonlinear mechanics model of bio-inspired hierarchical lattice materials consisting of horseshoe microstructures [J].
Ma, Qiang ;
Cheng, Huanyu ;
Jang, Kyung-In ;
Luan, Haiwen ;
Hwang, Keh-Chih ;
Rogers, John A. ;
Huang, Yonggang ;
Zhang, Yihui .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2016, 90 :179-202
[26]   FEM-Based Mechanics Modeling of Bio-Inspired Compliant Mechanisms for Medical Applications [J].
Sun, Yilun ;
Zhang, Dingzhi ;
Liu, Yuqing ;
Lueth, Tim C. .
IEEE TRANSACTIONS ON MEDICAL ROBOTICS AND BIONICS, 2020, 2 (03) :364-373
[27]   Bio-inspired hydrogel-based bandage with robust adhesive and antibacterial abilities for skin closure [J].
Wang, Penghui ;
Pu, Yajie ;
Ren, Yanhan ;
Liu, Shuai ;
Yang, Rong ;
Tan, Xiaoyan ;
Zhang, Wenjie ;
Shi, Tianqi ;
Li, Shuang ;
Chi, Bo .
SCIENCE CHINA-MATERIALS, 2022, 65 (01) :246-254
[28]   Bio-inspired switchable soft adhesion for the boost of adhesive surfaces and robotics applications: A brief review [J].
Duan, Weiwang ;
Yu, Zhilin ;
Cui, Wenhui ;
Zhang, Zengxin ;
Zhang, Wenling ;
Tian, Yu .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2023, 313
[29]   Bio-inspired dental multilayers: Effects of layer architecture on the contact-induced deformation [J].
Du, J. ;
Niu, X. ;
Rahbar, N. ;
Soboyejo, W. .
ACTA BIOMATERIALIA, 2013, 9 (02) :5273-5279
[30]   Bio-Inspired Coating Strategies for the Immobilization of Polymyxins to Generate Contact-Killing Surfaces [J].
Alves, Diana ;
Pereira, Maria Olivia .
MACROMOLECULAR BIOSCIENCE, 2016, 16 (10) :1450-1460