Rate dependent shear bands in a shear transformation zone model of amorphous solids
arXiv:0808.0529 · doi:10.1103/PhysRevE.79.016110
Abstract
We use Shear Transformation Zone (STZ) theory to develop a deformation map for amorphous solids as a function of the imposed shear rate and initial material preparation. The STZ formulation incorporates recent simulation results [Haxton and Liu, PRL 99 195701 (2007)] showing that the steady state effective temperature is rate dependent. The resulting model predicts a wide range of deformation behavior as a function of the initial conditions, including homogeneous deformation, broad shear bands, extremely thin shear bands, and the onset of material failure. In particular, the STZ model predicts homogeneous deformation for shorter quench times and lower strain rates, and inhomogeneous deformation for longer quench times and higher strain rates. The location of the transition between homogeneous and inhomogeneous flow on the deformation map is determined in part by the steady state effective temperature, which is likely material dependent. This model also suggests that material failure occurs due to a runaway feedback between shear heating and the local disorder, and provides an explanation for the thickness of shear bands near the onset of material failure. We find that this model, which resolves dynamics within a sheared material interface, predicts that the stress weakens with strain much more rapidly than a similar model which uses a single state variable to specify internal dynamics on the interface.
10 pages, 13 figures, corrected typos, added section on rate strengthening vs. rate weakening materials
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Cited by in corpus (5)
- Brittle yielding of amorphous solids at finite shear rates
- Heterogeneous dynamics during yielding of glasses: effect of aging
- Shear flow of angular grains: acoustic effects and non-monotonic rate dependence of volume
- Localization and instability in sheared granular materials: Role of friction and vibration
- A Model for Athermal Strain Localization in Dry Sheared Fault Gouge