Hysteresis from dynamically pinned sliding states
arXiv:cond-mat/0609117 · doi:10.1016/j.susc.2007.07.015
Abstract
We report a surprising hysteretic behavior in the dynamics of a simple one-dimensional nonlinear model inspired by the tribological problem of two sliding surfaces with a thin solid lubricant layer in between. In particular, we consider the frictional dynamics of a harmonic chain confined between two rigid incommensurate substrates which slide with a fixed relative velocity. This system was previously found, by explicit solution of the equations of motion, to possess plateaus in parameter space exhibiting a remarkable quantization of the chain center-of-mass velocity (dynamic pinning) solely determined by the interface incommensurability. Starting now from this quantized sliding state, in the underdamped regime of motion and in analogy to what ordinarily happens for static friction, the dynamics exhibits a large hysteresis under the action of an additional external driving force F_ext. A critical threshold value F_c of the adiabatically applied force F_ext is required in order to alter the robust dynamics of the plateau attractor. When the applied force is decreased and removed, the system can jump to intermediate sliding regimes (a sort of ``dynamic'' stick-slip motion) and eventually returns to the quantized sliding state at a much lower value of F_ext. On the contrary no hysteretic behavior is observed as a function of the external driving velocity.
12 pages, 5 figures, ECOSS 2006
References in corpus (2)
Cited by in corpus (8)
- Friction and Nonlinear Dynamics
- Role of transverse displacements for a quantized-velocity state of the lubricant
- Tribology of the lubricant quantized-sliding state
- Subharmonic Shapiro steps of sliding colloidal monolayers in optical lattices
- Nonlinear hysteretic behavior of a confined sliding layer
- Influence of substrate potential shape on the dynamics of a sliding lubricant chain
- Soliton dynamics in a solid lubricant during sliding friction
- Sliding states of a soft-colloid cluster crystal: Cluster versus single-particle hopping