Abstract
The frictional properties of a rough contact interface are controlled by its area of real contact, the dynamical variations of which underlie our modern understanding of the ubiquitous rateand- state friction law. In particular, the real contact area is proportional to the normal load, slowly increases at rest through aging, and drops at slip inception. Here, through direct measurements on various contacts involving elastomers or human fingertips, we show that the real contact area also decreases under shear, with reductions as large as 30%, starting well before macroscopic sliding. All data are captured by a single reduction law enabling excellent predictions of the static friction force. In elastomers, the areareduction rate of individual contacts obeys a scaling law valid from micrometer-sized junctions in rough contacts to millimetersized smooth sphere/plane contacts. For the class of soft materials used here, our results should motivate first-order improvements of current contact mechanics models and prompt reinterpretation of the rate-and-state parameters.
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Sahli, R., Pallares, G., Ducottet, C., Ben Ali, I. E., Al Akhrass, S., Guibert, M., & Scheibert, J. (2018). Evolution of real contact area under shear and the value of static friction of soft materials. Proceedings of the National Academy of Sciences of the United States of America, 115(3), 471–476. https://doi.org/10.1073/pnas.1706434115
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