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Impact of interstitial elements on the stacking fault energy of an equiatomic CoCrNi medium entropy alloy: theory and experiments

Authors :
Moravčík, Igor
Zelený, Martin
Dlouhý, Antonín
Hadraba, Hynek
Moravčíková de Almeida Gouvea, Larissa
Papež, Pavel
Fikar, Ondřej
Dlouhý, Ivo
Raabe, Dierk
Li, Zhiming
Moravčík, Igor
Zelený, Martin
Dlouhý, Antonín
Hadraba, Hynek
Moravčíková de Almeida Gouvea, Larissa
Papež, Pavel
Fikar, Ondřej
Dlouhý, Ivo
Raabe, Dierk
Li, Zhiming
Publication Year :
2022

Abstract

We investigated the effects of interstitial N and C on the stacking fault energy (SFE) of an equiatomic CoCrNi medium entropy alloy. Results of computer modeling were compared to tensile deformation and electron microscopy data. Both N and C in solid solution increase the SFE of the face-centered cubic (FCC) alloy matrix at room temperature, with the former having a more significant effect by 240% for 0.5 at % N. Total energy calculations based on density functional theory (DFT) as well as thermodynamic modeling of the Gibbs free energy with the CALPHAD (CALculation of PHAse Diagrams) method reveal a stabilizing effect of N and C interstitials on the FCC lattice with respect to the hexagonal close-packed (HCP) CoCrNi-X (X: N, C) lattice. Scanning transmission electron microscopy (STEM) measurements of the width of dissociated 1/2 dislocations suggest that the SFE of CoCrNi increases from 22 to 42-44 mJ center dot m(-2) after doping the alloy with 0.5 at. % interstitial N. The higher SFE reduces the nucleation rates of twins, leading to an increase in the critical stress required to trigger deformation twinning, an effect which can be used to design load-dependent strain hardening response.

Details

Database :
OAIster
Notes :
1, 23, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1427092465
Document Type :
Electronic Resource