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Effect of Alloying Elements on the Stacking Fault Energy of Co-Based Alloy Cocrwni Using Computational Thermodynamic, First-Principles, and Experimental Methods

https://doi.org/10.2139/ssrn.4469362
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The 14 references without a DOI — listed, not checked
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no DOI — not checkedGeneralized-stacking-fault energy and twin-boundary energy of hexagonal close-packed Au: A first-principles calculation
no DOI — not checkedEFFECT OF STACKING FAULT PROBABILITY ON g�e MARTENSITIC TRANSFORMATION AND SHAPE MEMORY EFFECT IN Fe�Mn�Si BASED ALLOYS
no DOI — not checkedref32
no DOI — not checkedDetermination of stacking fault probability in fcc Fe-Mn-Si-Al alloy by electron diffraction
no DOI — not checkedA General Mechanism of Martensitic Nucleation= Part I. General Concepts and the FCC HCP Transformation
no DOI — not checkedFirst principles methods using CASTEP
no DOI — not checkedX-ray Peak-Shift Determination of Deformation Fault Probability in Fe-Mn-Si Alloys
no DOI — not checkedStacking fault probability and stacking fault energy in CoNi alloys
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no DOI — not checkedStrengthening via Deformation Twinning in a Nickel Alloy
no DOI — not checkedStrengthen mechanism of hard-drawn cobalt-base elastic alloy
no DOI — not checkedBiocorrosion properties of antibacterial Ti-10Cu sintered alloy in several simulated biological solutions
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