4.7 Article

Microstructural evolution of nanocrystalline Fe-Zr alloys upon annealing treatment

期刊

MATERIALS CHARACTERIZATION
卷 103, 期 -, 页码 58-64

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.matchar.2015.03.019

关键词

Fe-based alloy; Nanocrystalline; Thermal stability; Microstructures; Solute segregation; Zener pinning

资金

  1. NSFC of China [51101121, 51125002, 51431008, 51371147]
  2. Fundamental Research Fund of NWPU [3102014JCQ01025]
  3. New Century Excellent Person Supporting Project [NCET-13-0470]
  4. Natural Science Foundation of Shaanxi province [2013JM6009]

向作者/读者索取更多资源

Nanocrystalline Fe-Zr alloys exhibit an extraordinary thermal stability at elevated temperatures, which enables their potential applications in various fields. However, there remain concerns regarding the controlling stabilizatioi. mechanisms responsible for their thermal stability. In this work, two nanocrystalline Fe-Zr alloys containing 1 at.% Zr and 5 at.% Zr were annealed at various temperatures (T-ann) up to 900 degrees C. Microstructural evolution of the alloys upon annealing was investigated by means of an X-ray diffractometer equipped with a 2-dimensional detector and transmission electron microscopy. Below 600 degrees C, microstructures of the two alloys consist of single nanocrystalline ferrite whose grain size is rather stable upon annealing treatments. Above 600 degrees C, accompanying the precipitation of Fe3Zr phase, an apparent grain coarsening of ferrite is observed, whereas the thermal stability of the alloys is still considerably higher than that of nanocrystalline pure Fe. Based on the experimental results, it was claimed that stabilization of the nanocrystalline Fe-Zr alloys should Pot be totally ascribed to the thermodynamic stabilization mechanism due to the reduction in grain boundary energy as suggested in earlier investigations [K.A. Darling et al., Scr. Mater. 59 (2008) 530 and K.A. Darling et al., Mater. Sri. Eng. A527 (2010) 3572]; when T-ann is higher than 600 degrees C, along with the precipitation of Fe3Zr, the effect of thermodynamic stabilization is weakened, the kinetic effect arising from Zener pinning of Fe3Zr precipitates turns to be an important mechanism contributing to the stabilization of the nanoscale grain size. (C) 2015 Elsevier Inc. All rights reserved.

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