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Twinning and precipitation strengthening in low stacking fault energy CoCr1.3FeNi0.7MnNb (x = 0.3, 0.367, 0.45) eutectic high entropy alloys upon cold forging and annealing

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dc.contributor.author Potnis, G
dc.contributor.author Jana, P P
dc.contributor.author Das, J
dc.date.accessioned 2025-11-13T05:55:35Z
dc.date.available 2025-11-13T05:55:35Z
dc.date.issued 2025-03
dc.identifier.citation Materials Science and Engineering: A; 925:147881 en_US
dc.identifier.uri https://www.sciencedirect.com/science/article/pii/S0921509325000991?via%3Dihub
dc.identifier.uri http://localhost:8080/xmlui/handle/123456789/5015
dc.description.abstract We report the strategy to enhance the mechanical properties of eutectic CoCr1.3FeNi0.7MnNbx (x = 0.3, 0.367, 0.45) high entropy alloy (EHEA) comprising of ultrafine lamellae of low SFE face-centered cubic (FCC) and hard Laves phase. The impact of forging up to 20 % plastic strain at room temperature followed by annealing at 500 °C and 850 °C on the evolution of microstructure and mechanical properties of EHEAs were investigated. Such cold forging induces high dislocation density (1.5 × 1015/m2) and twin density (7.8 × 106/m) in the low SFE FCC phase causing lamellae bending and their fragmentation. Furthermore, nano-sized σ-phase precipitated in the FCC phase of cold forged (CF) and annealed EHEA. The refinement of microstructure, formation of dislocation substructure, thermally stable deformation twins, and controlled precipitation of σ-phase (3 vol%) reduce the mean free path (Λ) for dislocation glide and provide a good combination of high strength of 1389–1537 MPa and large fracture strain of 11%–13 %. The preexisting twin lamellae in CF specimens act as a site for dislocation nucleation and storage providing good plastic strain under compression. Nanoindentation and TEM studies have revealed the high strain rate sensitivity (m = 0.0105) and low activation volume (V∗=13b3) in CF and annealed EHEAs, pointing the dislocation glide, dislocations interactions with lamellae interface, σ-phase precipitates, and twin boundaries are the dominant deformation mechanisms leading to strong hardening. The synergistic effect and the individual contributions of precipitation strengthening (σorowan) and Hall-Petch strengthening (σint) on the superior strength in CF and annealed EHEAs are explored. en_US
dc.language.iso en en_US
dc.publisher Elsevier en_US
dc.subject eutectic en_US
dc.subject high entropy alloy en_US
dc.subject thermomechanical processing en_US
dc.subject twinning en_US
dc.subject precipitation en_US
dc.title Twinning and precipitation strengthening in low stacking fault energy CoCr1.3FeNi0.7MnNb (x = 0.3, 0.367, 0.45) eutectic high entropy alloys upon cold forging and annealing en_US
dc.type Article en_US


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  • 2025
    Research articles authored by NIIST researchers published in 2025

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