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Interstitial doping enhances the strength-ductility synergy in a CoCrNi medium entropy alloy

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    0523562 - ÚFM 2021 RIV CH eng J - Journal Article
    Moravčík, I. - Horník, Vít - Minárik, P. - Li, L. - Dlouhý, Ivo - Janovská, Michaela - Raabe, D. - Li, Z.
    Interstitial doping enhances the strength-ductility synergy in a CoCrNi medium entropy alloy.
    Materials Science and Engineering A Structural Materials Properties Microstructure and Processing. Roč. 781, APR (2020), č. článku 139242. ISSN 0921-5093. E-ISSN 1873-4936
    R&D Projects: GA ČR(CZ) GA17-13573S; GA MŠMT(CZ) EF16_013/0001823
    Institutional support: RVO:68081723 ; RVO:61388998
    Keywords : Medium entropy alloy * Interstitials * Solid solution * Deformation behavior * Strengthening * Microstructure
    OECD category: Materials engineering; Materials engineering (UT-L)
    Impact factor: 5.234, year: 2020
    Method of publishing: Limited access
    https://www.sciencedirect.com/science/article/pii/S0921509320303270?via%3Dihub

    An equiatomic CoCrNi medium entropy alloy (MEA) with face-centered cubic (FCC) structure exhibits excellent combination of strength and ductility. Here we employ interstitial doping to enhance its mechanical performance. Interstitial CoCrNi MEAs with two different carbon contents, i.e., 0.5 at. % and 1 at. %, as well as a carbon-free CoCrNi reference MEA have been studied. The results show that up to 1 at. % carbon can be fully dissolved into the homogenized plus water-quenched FCC solid solution structure. Subsequent annealing leads to precipitation of nano-sized M23C6 type carbides which provide dispersion strengthening and enhanced strain hardening. The best combination of ultimate tensile strength of 1180 MPa at an elongation above 60% was obtained in fine grained CoCrNi doped with 0.5 at. % of carbon. Carbon alloying is also shown to significantly increase the lattice friction stress. Dislocation glide and mechanical twinning act as main deformation mechanisms. Thus, the joint contribution of multiple deformation mechanisms in the carbon-doped MEAs leads to significantly enhanced strength-ductility combinations compared to the carbon-free reference alloy, demonstrating that interstitial alloying can enhance the mechanical properties of MEAs.
    Permanent Link: http://hdl.handle.net/11104/0308245

     
     
Number of the records: 1  

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