Steady-state propagation speed of rupture fronts along one-dimensional frictional interfaces
arXiv:1509.01542 · doi:10.1103/PhysRevE.92.032406
Abstract
The rupture of dry frictional interfaces occurs through the propagation of fronts breaking the contacts at the interface. Recent experiments have shown that the velocities of these rupture fronts range from quasi-static velocities proportional to the external loading rate to velocities larger than the shear wave speed. The way system parameters influence front speed is still poorly understood. Here we study steady-state rupture propagation in a one-dimensional (1D) spring-block model of an extended frictional interface, for various friction laws. With the classical Amontons--Coulomb friction law, we derive a closed-form expression for the steady-state rupture velocity as a function of the interfacial shear stress just prior to rupture. We then consider an additional shear stiffness of the interface and show that the softer the interface, the slower the rupture fronts. We provide an approximate closed form expression for this effect. We finally show that adding a bulk viscosity on the relative motion of blocks accelerates steady-state rupture fronts and we give an approximate expression for this effect. We demonstrate that the 1D results are qualitatively valid in 2D. Our results provide insights into the qualitative role of various key parameters of a frictional interface on its rupture dynamics. They will be useful to better understand the many systems in which spring-block models have proved adequate, from friction to granular matter and earthquake dynamics.
16 pages, 10 figures, 1 table
References in corpus (8)
- Slow slip and the transition from fast to slow fronts in the rupture of frictional interfaces
- Role of friction-induced torque in stick-slip motion
- Modeling friction on a mesoscale: Master equation for the earthquake-like model
- Velocity-strengthening friction significantly affects interfacial dynamics, strength and dissipation
- Probing locally the onset of slippage at a model multi-contact interface
- On the speed of fast and slow rupture fronts along frictional interfaces
- History-dependent friction and slow slip from time-dependent microscopic junction laws studied in a statistical framework
- Propagation Length of Self-healing Slip Pulses at the Onset of Sliding: A Toy Model
Cited by in corpus (10)
- Continuum contact models for coupled adhesion and friction
- A 2-D Model for friction of complex anisotropic surfaces
- Effects of stretching on the frictional stress of rubber
- Tuning friction with composite hierarchical surfaces
- A minimal model for the onset of slip pulses in frictional rupture
- Correlation between slip precursors and topological length scales at the onset of frictional sliding
- A minimal model for slow, sub-Rayleigh, super-shear and unsteady rupture propagation along homogeneously loaded frictional interfaces
- Nature of the high-speed rupture of the two-dimensional Burridge-Knopoff model of earthquakes
- Transition between Macroscopic Steady Slippage and Creep Motion in a System with Velocity-Dependent Friction Stress
- Deriving the slip front propagation velocity with the slip- and slip-velocity-dependent friction laws via the use of the linear marginal stability hypothesis