Memory effects in friction: the role of sliding heterogeneities
vincenzo Fazio, Vito Acito, Fabien Amiot, Christian Fr\'etigny and, Antoine Chateauminois

TL;DR
This paper investigates how non-uniform sliding velocities within contact interfaces cause memory effects in friction, leading to complex transient behaviors and misalignment of friction forces, explained through a heterogeneous displacement model.
Contribution
It introduces a friction model that accounts for spatial heterogeneities and velocity dependence, accurately describing memory effects in soft matter friction.
Findings
Memory effects arise from non-uniform displacement distributions.
Friction force can be misaligned with the sliding trajectory.
Heterogeneous displacement models match experimental results.
Abstract
We report on memory effects involved in the transient frictional response of a contact interface between a silicone rubber and a spherical glass probe when it is perturbed by changes in the orientation of the driving motion or by velocity steps. From measurements of the displacement fields at the interface, we show that observed memory effects can be accounted for by the non-uniform distribution of the sliding velocity within the contact interface. As a consequence of these memory effects, the friction force may no longer be aligned with respect to the sliding trajectory. In addition, stick-slip motions with a purely geometrical origin are also evidenced. These observations are adequately accounted for by a friction model which takes into account heterogeneous displacements within the contact area. When a velocity dependence of the frictional stress is incorporated in this the model,…
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Taxonomy
TopicsAdhesion, Friction, and Surface Interactions · Brake Systems and Friction Analysis · Force Microscopy Techniques and Applications
