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Influence of Si Addition on Oxide Growth of Al-6 mass%Mg Alloy Melts

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Influence of Si addition on oxide layer growth of Al-6 mass%Mg alloys in molten state was investigated in this study. After melt holding for 24 h, the melt surface of only Si-free alloy became significantly bumpy, while no considerably oxidized surface was observed even with 1 mass%Si addition. There was no visible change on the appearance of melt surfaces with increasing Si content. As a result of compositional analysis on the melt samples between before and after melt holding, the Si-added alloys nearly maintained their Mg contents even after the melt holding for 24 h. On the other hand, the Mg content in the Si-free alloy showed a great reduction. The bumpy surface on Si-free alloy melt showed a large amount of pores and oxide clusters in its cross-section, while the Si-added alloy had no significantly grown oxide clusters on the surfaces. As a result of compositional analysis on the surfaces, the oxide clusters in Si-free alloy contained a great amount of Mg and oxygen. The oxide layer on the Si-added alloy was divided into Mg-rich and Mg-poor areas and contained certain amounts of Si. Such a mixed oxide layer containing Si would act as a protective layer during the melt holding for a long duration.
Słowa kluczowe
Twórcy
  • Korea Institute of Industrial Technology (KITECH), Advanced Materials and Process R&D Department, Incheon 21999, Republic of Korea
autor
  • Korea Institute of Industrial Technology (KITECH), Advanced Materials and Process R&D Department, Incheon 21999, Republic of Korea
  • Korea Institute of Industrial Technology (KITECH), Advanced Materials and Process R&D Department, Incheon 21999, Republic of Korea
  • Korea Institute of Industrial Technology (KITECH), Advanced Materials and Process R&D Department, Incheon 21999, Republic of Korea
autor
  • Korea Institute of Industrial Technology (KITECH), Advanced Materials and Process R&D Department, Incheon 21999, Republic of Korea
autor
  • Korea Institute of Industrial Technology (KITECH), Advanced Materials and Process R&D Department, Incheon 21999, Republic of Korea
Bibliografia
  • [1] J. R. Davis, ASM International, Aluminum and Aluminum Alloys, Materials Park 1993.
  • [2] G. Wu, K. Dash, M. L. Galano, K. A. Q. O’Reilly, Corros. Sci. 155, 97 (2019).
  • [3] B. H. Kim, S. H. Ha, Y. O. Yoon, H. K. Lim, S. K. Kim, D. H. Kim, Mater. Lett. 228, 108 (2018).
  • [4] S. H. Ha, B. H. Kim, Y. O. Yoon, H. K. Lim, T. W. Lee, S. H. Lim, S. K. Kim, Sci. Adv. Mater. 10, 697 (2018).
  • [5] D. Ajmera, E. Panda, Corros. Sci. 102, 425 (2016).
  • [6] N. Smith, A. Kvithyld, G. Tranell, Metall. Mater. Trans. B 49, 2846 (2018).
  • [7] S. H. Ha, B. H. Kim, Y. O. Yoon, H. K. Lim, T. W. Lee, S. H. Lim, S. K. Kim, Int. J. Metalcast. 13, 121 (2019).
  • [8] J. Jeong, J. Im, K. Song, M. Kwon, S. K. Kim, Y. B. Kang, S. H. Oh, Acta Mater. 61, 3267 (2013).
  • [9] F. Zarei, H. Nuranian, K. Shirvani, Surf. Coat. Technol. 394, 125901 (2020).
  • [10] Y. L. Zhang, J. Li, Y. Y. Zhang, D. N. Kang, J. Alloys Compd. 827, 154131 (2020).
  • [11] W. Kai, P. C. Kao, P. C. Lin, I. F. Ren, J. S. C. Jang, Intermetallics 18, 1994 (2010).
  • [12] S. H. Ha, B. H. Kim, Y. O. Yoon, H. K. Lim, S. K. Kim, Sci. Adv. Mater. 10, 694 (2018).
  • [13] C. W. Bale, E. Bélisle, P. Chartrand, S. A. Decterov, G. Eriksson, A. E. Gheribi, K. Hack, I. H. Jung, Y. B. Kang, J. Melançon, A. D. Pelton, S. Petersen, C. Robelin, J. Sangster, P. Spencer, M. A. Van Ende, Calphad 54, 35 (2016).
Uwagi
1. This work was supported by funding (No. 20010392) from Ministry of Trade, Industry and Energy, Korea.
2. Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5a4a5a3f-8e41-44dc-961f-23db5599efb2
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