English

Enhancement of adhesion strength through microvibrations: modeling and experiments

Soft Condensed Matter 2024-12-16 v2

Abstract

High-frequency micrometrical vibrations have been shown to greatly influence the adhesive performance of soft interfaces, however a detailed comparison between theoretical predictions and experimental results is still missing. Here, the problem of a rigid spherical indenter, hung on a soft spring, that is unloaded from an adhesive viscoelastic vibrating substrate is considered. The experimental tests were performed by unloading a borosilicate glass lens from a soft PDMS substrate excited by high-frequency micrometrical vibrations. We show that as soon as the vibration starts, the contact area increases abruptly and during unloading it decreases following approximately the JKR classical model, but with a much increased work of adhesion. We find that the pull-off force increases with respect to the amplitude of vibration up to a certain saturation level, which appeared to be frequency dependent. Under the hypothesis of short range adhesion, a lumped mechanical model was derived, which, starting from an independent characterization of the rate-dependent interfacial adhesion, predicted qualitatively and quantitatively the experimental results, without the need of any adjustable parameters.

Keywords

Cite

@article{arxiv.2411.03182,
  title  = {Enhancement of adhesion strength through microvibrations: modeling and experiments},
  author = {Michele Tricarico and Michele Ciavarella and Antonio Papangelo},
  journal= {arXiv preprint arXiv:2411.03182},
  year   = {2024}
}