A synergistic balance of strength and ductility was achieved in a prototypical fcc-based Al0.3CoCrFeNi complex concentrated alloy by incorporating hierarchical microstructural features into heterogeneous grain structure. Microstructural hierarchy was composed of different morphologies and size-scales of B2 precipitates and nano-twins that were incorporated in parent fcc matrix, which, additionally, was comprised of domains of fine and coarse grains. Strain partitioning between refined and coarse grains produced geometrically necessary dislocations during plastic deformation. This facilitated long-range back stresses during further deformation leading to simultaneous enhancement of strength and ductility. Furthermore, B2 precipitates complem...
The coarsening-grained single-phase face-centered cubic (fcc) medium-entropy alloys (MEAs) normally ...
The Al-Mg alloy engineered with bimodal grain size for high strength and increased ductility was dis...
The room-temperature strength of Al0.3CoCrFeNi high-entropy alloys (HEAs) is relatively low owing to...
A synergistic balance of strength and ductility was achieved in a prototypical fcc-based Al0.3CoCrFe...
Guided by thermodynamic modeling, engineering phase transformation pathways via thermo-mechanical pr...
While ordered L12 or gamma prime precipitates in face centered cubic (FCC) based microstructures hav...
The synergistic effect between heterogeneous structures has been proved to enhance the strength and ...
Ductility, i. e., uniform strain achievable in uniaxial tension, diminishes for materials with very ...
The current work investigates how the interactions among constituent elements in high entropy alloys...
The phenomenon of discontinuous precipitation (DP) leading to the formation of nano-rod FCC (γ) + L1...
Both heterogeneous grain structure and dual nanoprecipitates (B2 and L12) have been designed and obt...
Strength and ductility are the most fundamental mechanical properties of structural materials. Most ...
A lamellar (L12 + B2) AlCoCrFeNi2.1 eutectic high entropy alloy (EHEA) was severely deformed by a no...
AlCoCrFeNiTi high-entropy alloys (HEAs) have attracted much attention because of their excellent mec...
The effect of moderate cryo-rolling (∼65 % reduction) and annealing on microstructure and mechanical...
The coarsening-grained single-phase face-centered cubic (fcc) medium-entropy alloys (MEAs) normally ...
The Al-Mg alloy engineered with bimodal grain size for high strength and increased ductility was dis...
The room-temperature strength of Al0.3CoCrFeNi high-entropy alloys (HEAs) is relatively low owing to...
A synergistic balance of strength and ductility was achieved in a prototypical fcc-based Al0.3CoCrFe...
Guided by thermodynamic modeling, engineering phase transformation pathways via thermo-mechanical pr...
While ordered L12 or gamma prime precipitates in face centered cubic (FCC) based microstructures hav...
The synergistic effect between heterogeneous structures has been proved to enhance the strength and ...
Ductility, i. e., uniform strain achievable in uniaxial tension, diminishes for materials with very ...
The current work investigates how the interactions among constituent elements in high entropy alloys...
The phenomenon of discontinuous precipitation (DP) leading to the formation of nano-rod FCC (γ) + L1...
Both heterogeneous grain structure and dual nanoprecipitates (B2 and L12) have been designed and obt...
Strength and ductility are the most fundamental mechanical properties of structural materials. Most ...
A lamellar (L12 + B2) AlCoCrFeNi2.1 eutectic high entropy alloy (EHEA) was severely deformed by a no...
AlCoCrFeNiTi high-entropy alloys (HEAs) have attracted much attention because of their excellent mec...
The effect of moderate cryo-rolling (∼65 % reduction) and annealing on microstructure and mechanical...
The coarsening-grained single-phase face-centered cubic (fcc) medium-entropy alloys (MEAs) normally ...
The Al-Mg alloy engineered with bimodal grain size for high strength and increased ductility was dis...
The room-temperature strength of Al0.3CoCrFeNi high-entropy alloys (HEAs) is relatively low owing to...