A subregular solution thermodynamic model was employed to calculate the stacking fault energy (SFE) in Fe–Mn–Al–C–Si steels with contents of carbon 0.2–1.6 wt.%, manganese 1–35 wt.%, aluminum 1–10 wt.%, and silicon 0.5–4 wt.%. Based on these calculations, temperature-dependent and composition-dependent diagrams were developed in the mentioned composition range. Also, the effect of the austenite grain size (from 1 to 300 μm) on SFEs was analyzed. Furthermore, some results of SFE obtained with this model were compared with the experimental results reported in the literature. In summary, the present model introduces new changes that shows a better correlation with the experimental results and also allows to expand the ranges of temperatures, compositions, grain sizes, and also the SFE maps available in the literature to support the design of Fe–Mn–Al–C–Si steels as a function of the SFE.
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October 2016
Research-Article
Stacking Fault Energy Maps of Fe–Mn–Al–C–Si Steels: Effect of Temperature, Grain Size, and Variations in Compositions
O. A. Zambrano
O. A. Zambrano
Research Group of Fatigue and Surfaces (GIFS);
Research Group of Tribology,
Polymers, Powder Metallurgy and
Processing of Solid Waste (TPMR),
Materials Engineering School,
Universidad del Valle,
Cali 760033, Colombia
e-mail: oscar.zambrano@correounivalle.edu.co
Research Group of Tribology,
Polymers, Powder Metallurgy and
Processing of Solid Waste (TPMR),
Materials Engineering School,
Universidad del Valle,
Cali 760033, Colombia
e-mail: oscar.zambrano@correounivalle.edu.co
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O. A. Zambrano
Research Group of Fatigue and Surfaces (GIFS);
Research Group of Tribology,
Polymers, Powder Metallurgy and
Processing of Solid Waste (TPMR),
Materials Engineering School,
Universidad del Valle,
Cali 760033, Colombia
e-mail: oscar.zambrano@correounivalle.edu.co
Research Group of Tribology,
Polymers, Powder Metallurgy and
Processing of Solid Waste (TPMR),
Materials Engineering School,
Universidad del Valle,
Cali 760033, Colombia
e-mail: oscar.zambrano@correounivalle.edu.co
Contributed by the Materials Division of ASME for publication in the JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY. Manuscript received January 24, 2016; final manuscript received May 5, 2016; published online July 8, 2016. Assoc. Editor: Peter W. Chung.
J. Eng. Mater. Technol. Oct 2016, 138(4): 041010 (9 pages)
Published Online: July 8, 2016
Article history
Received:
January 24, 2016
Revised:
May 5, 2016
Citation
Zambrano, O. A. (July 8, 2016). "Stacking Fault Energy Maps of Fe–Mn–Al–C–Si Steels: Effect of Temperature, Grain Size, and Variations in Compositions." ASME. J. Eng. Mater. Technol. October 2016; 138(4): 041010. https://doi.org/10.1115/1.4033632
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