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The Hall–Petch and inverse Hall–Petch relations and the hardness of nanocrystalline metals

Journal of Materials Science · 2019 · Vol. 55(7) · pp. 2661–2681
Sneha N. NaikS. M. Walley

Abstract

Abstract We review some of the factors that influence the hardness of polycrystalline materials with grain sizes less than 1 µm. The fundamental physical mechanisms that govern the hardness of nanocrystalline materials are discussed. The recently proposed dislocation curvature model for grain size-dependent strengthening and the 60-year-old Hall–Petch relationship are compared. For grains less than 30 nm in size, there is evidence for a transition from dislocation-based plasticity to grain boundary sliding, rotation, or diffusion as the main mechanism responsible for hardness. The evidence surrounding the inverse Hall–Petch phenomenon is found to be inconclusive due to processing artefacts, grain growth effects, and errors associated with the conversion of hardness to yield strength in nanocrystalline materials.

Microstructure and mechanical propertiesMetal and Thin Film MechanicsMicrostructure and Mechanical Properties of SteelsGrain boundary strengtheningMaterials scienceNanocrystalline materialGrain sizeDislocationCrystalliteGrain boundaryMetallurgyPlasticityComposite material
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539
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References
A Model for Boundary Diffusion Controlled Creep in Polycrystalline Materials
Journal of Applied Physics · 1963 · 2,269 citations
General relationship between strength and hardness
Materials Science and Engineering A · 2011 · 1,177 citations
Dislocations and Plastic Flow in Crystals
American Journal of Physics · 1954 · 2,654 citations
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