Scientific Reports · 2017 · 470 citations · 30 references
Materials ScienceMaterials EngineeringEngineeringSevere Plastic DeformationMultiprincipal Element AlloyTensile StrengthMechanical EngineeringAlloy DesignSolid MechanicsDuctile High-entropy AlloysMicrostructure-strength RelationshipPlasticityAlloy PhaseChemical PropertiesMechanics Of MaterialsMicrostructureAlloysHigh-entropy Alloys
High-entropy alloys (HEAs) consisting of multiple principle elements provide an avenue for realizing exceptional mechanical, physical and chemical properties. We report a novel strategy for designing a new class of HEAs incorporating the additional interstitial element carbon. This results in joint activation of twinning- and transformation-induced plasticity (TWIP and TRIP) by tuning the matrix phase's instability in a metastable TRIP-assisted dual-phase HEA. Besides TWIP and TRIP, such alloys benefit from massive substitutional and interstitial solid solution strengthening as well as from the composite effect associated with its dual-phase structure. Nanosize particle formation and grain size reduction are also utilized. The new interstitial TWIP-TRIP-HEA thus unifies all metallic strengthening mechanisms in one material, leading to twice the tensile strength compared to a single-phase HEA with similar composition, yet, at identical ductility.
30
Microstructures and properties of high-entropy alloys
Yong Zhang, Ting Ting Zuo, Zhi Tang et al. · Progress in Materials Science · 2013 · 6.6K citations
A fracture-resistant high-entropy alloy for cryogenic applications
Bernd Gludovatz, Anton Hohenwarter, D. Catoor et al. · Science · 2014 · 5.4K citations
Metastable high-entropy dual-phase alloys overcome the strength–ductility trade-off
Zhiming Li, K.G. Pradeep, Yun Deng et al. · Nature · 2016 · 3.8K citations
The conflicts between strength and toughness
Robert O. Ritchie · Nature Materials · 2011 · 3.7K citations