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    Towards stacking fault energy engineering in FCC high entropy alloys

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    1-s2.0-S135964542100851X-main.pdf (4.850Mb)
    Date
    2022-02-01
    Author
    Tasneem Z., Khan
    Kirk, Tanner
    Vazquez, Guillermo
    Singh, Prashant
    Smirnov, A.V.
    Johnson, Duane D.
    Youssef, Khaled
    Arróyave, Raymundo
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    Abstract
    Stacking Fault Energy (SFE) is an intrinsic alloy property that governs much of the plastic deformation mechanisms observed in fcc alloys. While SFE has been recognized for many years as a key intrinsic mechanical property, its inference via experimental observations or prediction using, for example, computationally intensive first-principles methods is challenging. This difficulty precludes the explicit use of SFE as an alloy design parameter. In this work, we combine DFT calculations (with necessary configurational averaging), machine-learning (ML) and physics-based models to predict the SFE in the fcc CoCrFeMnNiV-Al high-entropy alloy space. The best-performing ML model is capable of accurately predicting the SFE of arbitrary compositions within this 7-element system. This efficient model along with a recently developed model to estimate intrinsic strength of fcc HEAs is used to explore the strength–SFE Pareto front, predicting new-candidate alloys with particularly interesting mechanical behavior.
    URI
    https://www.sciencedirect.com/science/article/pii/S135964542100851X
    DOI/handle
    http://dx.doi.org/10.1016/j.actamat.2021.117472
    http://hdl.handle.net/10576/30807
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    • Materials Science & Technology [‎191‎ items ]

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