Adhesion of a rigid punch to a confined elastic layer revisited

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Date
2017
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Milton Park : Taylor & Francis
Abstract

The adhesion of a punch to a linear elastic, confined layer is investigated. Numerical analysis is performed to determine the equivalent elastic modulus in terms of layer confinement. The size of the layer relative to the punch radius and its Poisson’s ratio are found to affect the layer stiffness. The results reveal that the equivalent modulus of a highly confined layer depends on its Poisson’s ratio, whereas, in contrast, an unconfined layer is only sensitive to the extent of the elastic film. The solutions of the equivalent modulus obtained from the simulations are fitted by an analytical function that, subsequently, is utilized to deduce the energy release rate for detachment of the punch via linear elastic fracture mechanics. The energy release rate strongly varies with layer confinement. Regimes for stable and unstable crack growth can be identified that, in turn, are correlated to interfacial stress distributions to distinguish between different detachment mechanisms.

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Keywords
stress distribution, finite element analysis, dry adhesion, pressure-sensitive, tack
Citation
Hensel, R., McMeeking, R. M., & Kossa, A. (2017). Adhesion of a rigid punch to a confined elastic layer revisited. https://doi.org//10.1080/00218464.2017.1381603
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CC BY-NC-ND 4.0 Unported