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arXiv · 2110.11838

Experimental and numerical study of the effect of surface patterning on the frictional properties of polymer surfaces

Abstract

We describe benchmark experiments to evaluate the frictional properties of laser patterned low-density polyethylene as a function of sliding velocity, normal force and humidity. The pattern is a square lattice of square cavities with sub-mm spacing. We find that dynamic friction decreases compared to non-patterned surfaces, since stress concentrations lead to anticipated detachment, and that stick-slip behavior is also affected. Friction increases with humidity, and the onset of stick-slip events occurs in the high humidity regime. Experimental results are compared with numerical simulations of a simplified 2-D spring-block model. A good qualitative agreement can be obtained by introducing a deviation from the linear behavior of the Amontons-Coulomb law with the load, due to a saturation in the effective contact area with pressure. This also leads also to the improvement of the quantitative results of the spring-block model by reducing the discrepancy with the experimental results, indicating the robustness of the adopted simplified approach, which could be adopted to design patterned surfaces with controlled friction properties.

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Simone Balestra, Gianluca Costagliola, Amedeo Pegoraro, Federico Picollo, Jean-François Molinari, Nicola M. Pugno, Ettore Vittone, Federico Bosia, Agusti Sin. 2021-10-22. Experimental and numerical study of the effect of surface patterning on the frictional properties of polymer surfaces. https://doi.org/10.1115/1.4052777

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