Abstract
A mechanism-based plasticity model based on dislocation theory is developed to describe the mechanical behavior of the hierarchical nanocrystalline alloys. The stress–strain relationship is derived by invoking the impeding effect of the intra-granular solute clusters and the inter-granular nanostructures on the dislocation movements along the sliding path. We found that the interaction between dislocations and the hierarchical microstructures contributes to the strain hardening property and greatly influence the ductility of nanocrystalline metals. The analysis indicates that the proposed model can successfully describe the enhanced strength of the nanocrystalline hierarchical alloy. Moreover, the strain hardening rate is sensitive to the volume fraction of the hierarchical microstructures. The present model provides a new perspective to design the microstructures for optimizing the mechanical properties in nanostructural metals.
Original language | English |
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Article number | 42 |
Pages (from-to) | 1-8 |
Number of pages | 8 |
Journal | Journal of Nanoparticle Research |
Volume | 18 |
Issue number | 2 |
DOIs | |
State | Published - 1 Feb 2016 |
Keywords
- Hierarchical nanostructures
- Mechanical behavior
- Mechanism-based plasticity model
- Modeling and simulations
- Nanocrystalline alloys