paper

Mechanical properties of crystalline-amorphous composites: generalisation of Hall-Petch and inverse Hall-Petch behaviours

arXiv:2410.18139

Abstract

The strength, , of a polycrystal decreases with mean grain diameter at atoms (i.e. Hall-Petch behaviour) and increases at (i.e. inverse Hall-Petch behaviour). Our simulations generalise to , where is the mean thickness of grain boundaries. For various particle compositions, the maximum strength is reached at particles for single-component face-centred-cubic solids and at for bidispersed or body-centred-cubic solids because of the different activation stresses of dislocation motions. The results explain recent alloy experiments and provide a way to exceed the maximum strength of polycrystals. Ductility and elastic moduli are also measured in the broad space. The regimes without a strength-ductility trade-off, the maximum ductility and ductile--brittle transitions are identified. These results obtained in space are important in solid mechanics and can guide the fabrication of crystalline-amorphous composites with outstanding mechanical properties.