4.7 Article

Achieving excellent strength-ductility synergy in twinned NiCoCr medium-entropy alloy via Al/Ta co-doping

期刊

JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY
卷 87, 期 -, 页码 184-195

出版社

JOURNAL MATER SCI TECHNOL
DOI: 10.1016/j.jmst.2021.01.060

关键词

Medium-entropy alloys; Mechanical properties; Solid solution hardening; Twinning behavior; Strength-ductility synergy

资金

  1. National Natural ScienceFoundation of China [51722104, 51790482, 51621063, 51625103]
  2. 111 Project 2.0 of China [PB2018008]
  3. National Key Research and Development Program of China [2017YFA0700701]
  4. Fundamental Research Funds for the Central Universities [xtr022019004]

向作者/读者索取更多资源

Alloying using novel design principles to achieve solid solution hardening and a ductile matrix can lead to excellent strength-ductility synergy in high/medium-entropy alloys. Co-doping Al/Ta in NiCoCr MEA improves mechanical properties, increasing strength, strain-hardening capacity, refining grains, and inducing abnormal twinning behavior.
Alloying is an effective strategy to tailor microstructure and mechanical properties of metallic materials to overcome the strength-ductility trade-off dilemma. In this work, we combined a novel alloy design principle, i.e. harvesting pronounced solid solution hardening (SSH) based on the misfit volumes engineering, and simultaneously, architecting the ductile matrix based on the valence electron concentrations (VEC) criterion, to fulfill an excellent strength-ductility synergy for the newly emerging high/medium-entropy alloys (HEAs/MEAs). Based on this strategy, Al/Ta co-doping within NiCoCr MEA leads to an efficient synthetic approach, that is minor Al/Ta co-doping not only renders significantly enhanced strength with notable SSH effect and ultrahigh strain-hardening capability, but also sharply refines grains and induces abnormal twinning behaviors of (NiCoCr)(92)Al6Ta2 MEA. Compared with the partially twinned NiCoCr MEA, the yield strength (sigma(y)) and ultimate tensile strength (sigma(UTS)) of fully twinned Al/Ta-containing MEA were increased by similar to 102 % to similar to 600 MPa and similar to 35 % to similar to 1000 MPa, respectively, along with good ductility beyond 50 %. Different from the NiCoCr MEA with deformation twins (DTs)/stacking faults (SFs) dominated plasticity, the extraordinary strain-hardening capability of the solute-hardened (NiCoCr)(92)Al6Ta2 MEA, deactivated deformation twinning, originates from the high density of dislocation walls, microbands and abundance of SFs. The abnormal twinning behaviors, i.e., prevalence of annealing twins (ATs) but absence of DTs in (NiCoCr)(92)Al6Ta2 MEA, are explained in terms of the relaxation of grain boundaries (for ATs) and the twinning mechanism transition (for DTs), respectively. (C) 2021 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.

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