Review of alloys developed using the entropy approach

OBRABOTKAMETALLOV Vol. 23 No. 2 2021 139 MATERIAL SCIENCE 3. Cantor B., Chang I.T.H., Knight P., Vincent A.J.B. Microstructural development in equiatomic multicomponent alloys. Materials Science and Engineering: A , 2004, vol. 375–377, pp. 213–218. DOI: 10.1016/j.msea.2003.10.257. 4. Yeh J.W. Recent progress in high-entropy alloys. Annales de Chimie-Science des Materiaux , 2006, vol. 31, pp. 633–648. DOI: 10.3166/acsm.31.633-648. 5. Yeh J.-W., Chen Y.-L., Lin S.-J., Chen S.-K. High-entropy alloys – a new era of exploitation. Materials Science Forum , 2007, vol. 560, pp. 1–9. DOI: 10.4028/www.scienti fi c.net/MSF.560.1. 6. Yeh J.-W., Chen S.-K., Gan J.-Y., Lin S.-J., Chin T.-S., Shun T.-T., Tsau C.-H., Chang S.-Y. Formation of simple crystal structures in Cu-Co-Ni-Cr-Al-Fe-Ti-V alloys with multiprincipal metallic elements. Metallurgical and Materials Transactions: A , 2004, vol. 35, pp. 2533–2536. DOI: 10.1007/s11661-006-0234-4. 7. Kuznetsov A.V., Salishchev G.A., Sen’kov O.N., Stepanov N.D., Shaisultanov D.G. Vliyanie mikrostruktury na mekhanicheskie svoistva pri rastyazhenii vysokoentropiinogo splava AlCoCrCuFeNi [Microstructure in fl uence on tensile mechanical properties of an AlCoCrCuFeNi high-entropy alloy]. Nauchnye vedomosti Belgorodskogo gosudarstvennogo universiteta. Matematika. Fizika = Belgorod State University Scienti fi c Bulletin. Mathematics and Physics , 2012, vol. 11 (27), pp. 191–205. 8. Zhang Y. High-entropy materials: a brief introduction . Singapore, Springer Nature, 2019. 159 p. ISBN 978- 981-13-8526-1. 9. Zhang Y., Zuo T.T., Tang Z., Gao M.C., Dahmen K.A., Liaw P.K., Lu Z.P. Microstructures and properties of high-entropy alloys. Progress in Materials Science , 2014, vol. 61, pp. 1–93. DOI: 10.1016/j.pmatsci.2013.10.001. 10. Cantor B. Multicomponent and high entropy alloys. Entropy , 2014, vol. 16 (9), pp. 4749–4768. DOI: 10.3390/ e16094749. 11. Miracle D.B., Senkov O.N. A critical review of high entropy alloys and related concepts. Acta Materialia , 2017, vol. 122, pp. 448–511. DOI: 10.1016/j.actamat.2016.08.081. 12. Gao M.C., Yeh J.-W., Liaw P.K., Zhang Y., eds. High-entropy alloys: fundamentals and applications . Cham, Springer International Publishing, 2016. 524 p. ISBN 978-3-319-27013-5. 13. Zhang W., Liaw P.K., Zhang Y. Science and technology in high-entropy alloys. Science China Materials , 2018, vol. 61 (1), pp. 2–22. DOI: 10.1007/s40843-017-9195-8. 14. Murty B.S., Yeh J.W., Ranganathan S. High entropy alloys . Amsterdam, Elsevier, 2014. 218 p. ISBN 9780128002513. 15. Murty B.S., Yeh J.W., Ranganathan S., Bhattacharjee P.P. High-entropy alloys . Amsterdam, Elsevier, 2019. 374 p. ISBN 978-0-12-816067-1. 16. George E.P., Raabe D., Ritchie R.O. High-entropy alloys. Nature Reviews Materials , 2019, vol. 4, pp. 515– 534. DOI: 10.1038/s41578-019-0121-4. 17. Rogachev A.S. Struktura, stabil’nost’ i svoistva vysokoentropiinykh splavov [Structure, stability and proper- ties of high-entropy alloys]. Fizika metallov i metallovedenie = The Physics of Metals and Metallography , 2020, vol. 121, no. 8, pp. 807–841. DOI: 10.31857/S0015323020080094. (In Russian). 18. Singh S., Wanderka N., Glatzel U., Banhart J. Decomposition in multi-component AlCoCrCuFeNi high- entropy alloy. Acta Materialia , 2011, vol. 59, pp. 182–190. DOI: 10.1016/j.actamat.2010.09.023. 19. Senkov O.N., Wilks G.B., Scott J.M., Miracle D.B. Mechanical properties of Nb25Mo25Ta25W25 and V20Nb20Mo20Ta20W20 refractory high entropy alloys. Intermetallics , 2011, vol. 11, pp. 698–706. DOI: 10.1016/j. intermet.2011.01.004. 20. Zhang Y., Zhou Y.J., Lin J.P., Chen G.L., Liaw P.K. Solid-solution phase formation rules for multi-component alloys. Advanced Engineering Materials , 2018, vol. 10 (6), pp. 534–538. DOI: 10.1002/adem.200700240. 21. Klimova M.V. Vliyanie deformatsionno-termicheskoi obrabotki na strukturu i mekhanicheskie svoistva vyso- koentropiinykh splavov sistemy Co-Cr-Fe-Mn-Ni(Al, C) . Diss. kand. tekhn. nauk [In fl uence of deformation-heat treatment on the structure and mechanical properties of high entropy alloys of the Co-Cr-Fe-Mn-Ni (Al, C) system. PhD eng. sci. diss.]. Ekaterinburg, 2019. 151 p. 22. Bashev V.F., Kushnerev A.I. Struktura i svoistva vysokoentropiinogo splava CoCrCuFeNiSn x [Structure and properties of high-entropy CoCrCuFeNiSn x alloys]. Fizika metallov i metallovedenie = The Physics of Metals and Metallography , 2014, vol. 115, no. 7, pp. 737–741. DOI: 10.7868/S0015323014040020. (In Russian). 23. Firstov S.A., Gorban’ V.F., Krapivka N.A., Pechkovskii E.P. Novyi klass materialov – vysokoentropiinye splavy i pokrytiya [New class of materials – high entropy alloys and coatings]. Vestnik Tambovskogo universiteta. Seriya: Estestvennye i tekhnicheskie nauki = Tambov University Reports. Series: Natural and Technical Sciences , 2013, vol. 18, no. 4-2, pp. 1938–1940. 24. Firstov S.A., Gorban’V.F., Danilenko N.I., Karpets M.V., Andreev A.A., Makarenko E.S. Thermal stability of superhard nitride coatings from high-entropy multicomponent Ti–V–Zr–Nb–Hf alloy. Powder Metallurgy and Metal

RkJQdWJsaXNoZXIy MTk0ODM1