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Adhesive behavior of micro/nano-textured surfaces

  • Yuyan Zhang
  • , Xiaoli Wang*
  • , Hanqing Li
  • , Ben Wang
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • Massachusetts Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

A numerical model of the adhesive contact between a rigid smooth sphere and an elastic textured surface based on the Lennard-Jones interatomic potential law and the Hamaker summation method is established. Textures are considered by introducing the texture height distribution into the gap equation. Simulation results show that the pull-off force on textured surfaces decreases compared to that on smooth surfaces. Furthermore, effects of sphere-shaped textures on reducing adhesion are more obvious than cylinder-shaped or cube-shaped textures when the coverage area ratio, maximum height and interval of textures are fixed. For surfaces with sphere-shaped textures, variation trends of the mean pull-off force with texture density are not monotonous, and there exists a certain range of texture densities in which the mean pull-off force is small and its variation is insignificant. In addition, the pull-off force depends also on the maximum height and radius of textures. On one hand, if the texture radius is fixed, larger maximum height results in smaller pull-off force, and if the maximum height is fixed, the pull-off force tends to increase almost linearly with increases in texture radius. On the other hand, if the height-diameter ratio of textures is fixed, the pull-off force reaches a minimum at an optimum texture radius or maximum height.

Original languageEnglish
Pages (from-to)174-183
Number of pages10
JournalApplied Surface Science
Volume329
DOIs
Publication statusPublished - 28 Feb 2015

Keywords

  • Adhesion
  • Elastic textured surface
  • Lennard-Jones interatomic potential law
  • Rigid sphere

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