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The influence of different types of precipitation on the corrosion behavior was investigated in three aluminum-siliconmagnesium alloys. The microstructures of the alloys were studied through optical (OM) and scanning electron microscopy (SEM). The structures consisted of an α-Al solid solution matrix, Si eutectic crystals, secondary phases AlFeSi and AlMgFeSi (Chinese script), as well as Mg2Si. The corrosion behavior was examined with the use of a potentiodynamic polarization test followed by a SEM surface analysis. The results indicate that all the analyzed samples were in the passive state and AlSi10Mg was less reactive in the corrosive environment.
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Rocznik
Tom
Strony
209--212
Opis fizyczny
Bibliogr. 18 poz., rys., wykr., tab.
Twórcy
autor
- Warsaw University of Technology, Faculty of Materials Science and Engineering, 141 Woloska Str., Warszawa, Poland
autor
- Warsaw University of Technology, Faculty of Materials Science and Engineering, 141 Woloska Str., Warszawa, Poland
autor
- Warsaw University of Technology, Faculty of Materials Science and Engineering, 141 Woloska Str., Warszawa, Poland
autor
- Warsaw University of Technology, Faculty of Materials Science and Engineering, 141 Woloska Str., Warszawa, Poland
autor
- Silesian University of Technology, Department of Physics and Chemistry of Metals, 12 Bankowa Str., Katowice, Poland
Bibliografia
- [1] C. Park, S. Kim, Y. Kwon, Y. Lee, J. Lee, Mater. Sci. Eng. A 391, 86 - 94 (2005).
- [2] J. M. Bastidas, A. Forn, C.I. Torres, M.T. Polo, Mater. Corros. 52, 691 - 696 (2001).
- [3] S. Tahamtan, A. Fadavi Boostani, Mater. Des. 30, 2483 - 2489 (2009).
- [4] S. Tahamtan, A. Fadavi Boostani, Trans. Nonferrous Met. Soc. China 20, 1702 - 1706 (2010).
- [5] R. Władysiak, Arch Metall Mater. 52, 229 (2007).
- [6] R. Władysiak, Arch Metall Mater. 58, 977 - 980, (2013).
- [7] S. Fintová, R. Konečná, G.Nicoletto, Acta Met Slo 3, 223 -231 (2013).
- [8] Sang Won Han, Met Mater. Int.19, 1 - 4 (2013).
- [9] C. M. Dinnis, J. A. Taylor, and A. K. Dahle, Scripta Mater. 53, 955 (2005).
- [10] Yongzhong Zhang, Kui Zhang, Guojun Liu, Jun Xu, Likai Shi, Daijin Cui, Xuping Wu, Bo Cui, J Mater Process Tech. 137, 195-200 (2003).
- [11] Y. H. Cho, H.-C. Lee, K. H. Oh, A. K. Dahle, Metall Mater Trans A. 39, 2435-2448 (2008).
- [12] S. Haro-Rodríguez, R. E Goytia-Reyes, D. K. Dwivedi, V. H Baltazar-Hernández, H. Flores-Zúñiga, M. J. Pérez-López. Mater Design. 32, 1865 - 1871 (2011).
- [13] N. C. W. Kuijpers, W. H. Kool, P. T. G. Koenis, K. E. Nilsen, I. Todd, S. van der Zwaag, Materials Characterization 49, 409-420 (2003).
- [14] M. Warmuzek, J. Sieniawski, K. Wicher, G. Mrówka- Nowotnik, J Mater Process Tech 175, 421 - 426 (2006).
- [15] B. Bryksi Stunova, Acta Polytech. 52, 26-32 (2012).
- [16] R. Arrabal, B. Mingo, A. Pardo, M. Modedano, E. Matykina, I. Rodriguez, Corros Sci. 73, 342 - 355 (2013).
- [17] Kiryl A. Yasaku, M.L. Zheldkevich, S. V. Lamaka, M. G. S. Ferreira, Electrochim Acta 52, 7651-7659 (2007).
- [18] S. G. Shabestari, Mater. Sci. Eng. A 383, 289-298 (2004).
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę
Typ dokumentu
Bibliografia
Identyfikator YADDA
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