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Materials Science in Additive Manufacturing                           AM-produced CoCrFeMnNi properties



               15: 1353.                                          thermodynamic modeling and 3D printing of elemental
                                                                  powder blends for high-throughput investigation of high-
            62.  Lu Y, Gan Y, Lin J, et al., 2017, Effect of laser speeds on the   entropy alloys–Towards rapid alloy screening and design.
               mechanical property and  corrosion  resistance  of CoCrW   Mater Sci Eng A, 688: 180–189.
               alloy fabricated by SLM. Rapid Prototyp J, 23: 28–33.
                                                               68.  Schuh B, Mendez-Martin F, Völker B,  et  al., 2015,
            63.  Zhu M, Zhao B, Yuan Y, et al., 2021, Effect of annealing time   Mechanical properties, microstructure and thermal stability
               on microstructure and corrosion behavior of CoCrFeMnNi   of a nanocrystalline CoCrFeMnNi high-entropy alloy after
               high-entropy alloy in alkaline soil simulation solution.   severe plastic deformation. Acta Mater, 96: 258–268.
               Corrosion Commun, 3: 45–61.
                                                               69.  Otto F, Hanold NL, George EP, 2014, Microstructural evolution
            64.  Sing SL, Huang S, Yeong WY, 2020, Effect of solution heat   after thermomechanical processing in an equiatomic, single-
               treatment  on  microstructure  and  mechanical  properties   phase CoCrFeMnNi high-entropy alloy with special focus on
               of laser powder bed fusion produced cobalt-28chromium-  twin boundaries. Intermetallics, 54: 39–48.
               6molybdenum. Mater Sci Eng A, 769: 138511.
                                                               70.  Li D, Zhang Y, 2016, The ultrahigh charpy impact toughness
            65.  Gludovatz B, Hohenwarter A, Catoor D,  et  al., 2014,   of forged AlxCoCrFeNi high entropy alloys at room and
               A  fracture-resistant  high-entropy  alloy  for  cryogenic   cryogenic temperatures. Intermetallics, 70: 24–28.
               applications. Science, 345: 1153–1158.
                                                               71.  Zhang Y, Zuo TT, Tang Z,  et al., 2014, Microstructures
            66.  Piglione A, Dovgyy B, Liu C,  et al., 2018, Printability   and properties of high-entropy alloys.  Progress Mater Sci,
               and  microstructure  of  the  CoCrFeMnNi  high-entropy   61: 1–93.
               alloy fabricated by laser powder bed fusion.  Mater  Lett,   72.  Leng Y, 2009,  Materials characterization: Introduction to
               224: 22–25.
                                                                  Microscopic and Spectroscopic Methods. United States: John
            67.  Haase C, Tang F, Wilms MB,  et al., 2017, Combining   Wiley & Sons.

















































            Volume 2 Issue 1 (2023)                         17                       https://doi.org/10.36922/msam.42
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