Non-local plasticity effects on notch fracture mechanics
arXiv:1709.08412 · doi:10.1016/j.tafmec.2017.09.007
Abstract
We investigate the influence of gradient-enhanced dislocation hardening on the mechanics of notch-induced failure. The role of geometrically necessary dislocations (GNDs) in enhancing cracking is assessed by means of a mechanism-based strain gradient plasticity theory. Both stationary and propagating cracks from notch-like defects are investigated through the finite element method. A cohesive zone formulation incorporating monotonic and cyclic damage contributions is employed to address both loading conditions. Computations are performed for a very wide range of length scale parameters and numerous geometries are addressed, covering the main types of notches. Results reveal a strong influence of the plastic strain gradients in all the scenarios considered. Transitional combinations of notch angle, radius and length scale parameter are identified that establish the regimes of GNDs-relevance, laying the foundations for the rational application of gradient plasticity models in damage assessment of notched components.
References in corpus (7)
- Abaqus2Matlab: A suitable tool for finite element post-processing
- Strain gradient plasticity-based modeling of hydrogen environment assisted cracking
- On fracture in finite strain gradient plasticity
- Strain gradient plasticity modeling of hydrogen diffusion to the crack tip
- A cohesive zone framework for environmentally assisted fatigue
- Modeling damage and fracture within strain-gradient plasticity
- A finite element framework for distortion gradient plasticity with applications to bending of thin foils
Cited by in corpus (5)
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- A mechanism-based gradient damage model for metallic fracture