4.7 Article

Grain size stabilization of mechanically alloyed nanocrystalline Fe-Zr alloys by forming highly dispersed coherent Fe-Zr-O nanoclusters

Journal

ACTA MATERIALIA
Volume 158, Issue -, Pages 340-353

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2018.07.070

Keywords

Nanocrystalline materials; Fe-based alloys; Precipitates; Oxides; Mechanical alloying; Thermal stability

Funding

  1. National Key R&D Program of China [2017YFB0703001]
  2. NSFC of China [51771153, 51371147, 51790481, 51431008]
  3. State Key Lab. of Solidification Processing of Northwestern Polytechnical University [146-QZ-2016]
  4. Fundamental Research Funds for the Central Universities [3102017jc03008]

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Grain size stabilization is crucial for the production and application of nanocrystalline (NC) materials. The mechanically alloyed (MA) NC Fe-Zr system is known as a very successful NC system as it exhibits excellent thermal stability at elevated temperatures. The grain size stabilization of this system has been previously ascribed to its reduced grain boundary (GB) energy by Zr segregation and Zener pinning of Zr-rich intermetallic precipitates. In this work, we report a different mechanism that significantly contributes to grain size stabilization of this NC alloy system using two MA-produced NC Fe-Zr alloys (Fe-1 at.% Zr and Fe-5 at.% Zr) as examples. We show by using atom probe tomography and Cs-corrected transmission electron microscopy that highly dispersed coherent Fe-Zr-O nanoclusters, with a number density up to 10(24) m(-3), form in ferrite matrix after annealing at certain temperatures. Our first-principles calculations indicate that the formation of these nanoclusters is caused by the ordering of Zr and O-impurity in ferrite matrix. We analyzed the underlying mechanism of grain size stabilization in terms of the experimental results and the Zener pinning theory, and suggest that the pinning effect exerted by these nanoclusters significantly contributes to grain size stabilization of the NC Fe-Zr alloys. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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