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Characterization of Corrosion and Stress Corrosion Cracking of AE44 Magnesium Alloy

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Języki publikacji
EN
Abstrakty
EN
The paper presents the susceptibility of AE44 magnesium alloy to electrochemical corrosion and stress corrosion cracking (SCC). The evaluation of the intensity of the interaction of the corrosive environment was carried out using the corrosion tests and the Slow Strain Rate Test (SSRT). Corrosion tests performed in 0.1 M Na2 SO4 solution (immersion in solution and under cathodic polarization conditions) revealed that the layer of corrosion products was much thicker after immersion test. The results of SSRT showed that the AE44 alloy deformed in the solution was characterized by higher plasticity compared to the alloy deformed in the air after immersion in solution. Moreover, the fractures were characterized by different morphology. In the case of an alloy deformed in the solution under cathodic polarization many microcracks on the fracture were observed, which were not observed in the case of the alloy deformed in the air.
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Twórcy
autor
  • Silesian University of Technology, Department of Advanced Materials and Technologies, 8 Krasińskiego Str., 40-019 Katowice, Poland
autor
  • BGH Polska Sp. z o.o., Żelazna 9, 40-851 Katowice, Poland
autor
  • Silesian University of Technology, Department of Advanced Materials and Technologies, 8 Krasińskiego Str., 40-019 Katowice, Poland
Bibliografia
  • [1] W. Walke, E. Hadasik, J. Przondziono, D. Kuc, I. Bednarczyk, G. Niewielski, Plasticity and corrosion resistance of magnesium alloy WE43, Archives of Materials Science and Engineering 51 (1), 16-24 (2011).
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  • [4] G. L. Song, Corrosion behavior and prevention strategies for magnesium (Mg) alloys, in: Corrosion Prevention of Magnesium Alloys: A Volume in Woodhead Publishing Series in Metals and Surface Engineering 1st Edition, 3-37 (2013).
  • [5] R. C. Zeng, J. Zhang, W. J. Huang, W. Dietzel, K. U. Kainer, C. Blawert, K. Wei, W. Ke, Review of studies on corrosion of magnesium alloys, Transactions of Nonferrous Metals Society of China 16, 763-771 (2006).
  • [6] I. Pietkun-Greber, R. Janka, Analiza skutków oddziaływania wodoru na metale i stopy, Chemia-Dydaktyka-Ekologia-Metrologia 4 (2), 75-78 (2011) (in Polish).
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  • [12] J. Chen, M. Ai, J. Wang, E. H. Han, W. Ke, Formation of hydrogen blister on AZ91 magnesium alloy during cathodic charging, Corrosion Science, 1197-1200 (2009).
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  • [14] J. Wang, J. Chen, E. Han, W. Ke, Investigation of Stress Corrosion Cracking Behaviors of an AZ91 Magnesium Alloy in 0.1 kmol/m3 Na2SO4 Solution Using Slow Strain Rate Test, Materials Transactions 49 (5), 1052-1056 (2008).
  • [15] J. Chen, J. Wang, E. Han, W. Ke, Electrochemical corrosion and mechanical behaviors of the charged magnesium, Materials Science and Engineering A 494, 257-262 (2008).
  • [16] B. Chmiela, A. Mościcki, M. Sozańska, Investigation of Stress Corrosion Cracking in Magnesium Alloys, Solid State Phenomena 211, 89-92 (2013).
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  • [22] A. Atrens, N. Winzer, W. Dietzel, P. Srinivasan, G.-L. Song, Stress corrosion cracking (SCC) of magnesium (Mg) alloys, in: Corrosion of Magnesium Alloys, Elsevier, 299-364 (2011).
  • [23] M. Bobby Kannan, W. Dietzel, C. Blawert, A. Atrens, P. Lyon, Stress corrosion cracking of rare-earth containing magnesium alloys ZE41, QE22 and Elektron 21 (EV31A) compared with AZ80, Materials Science and Engineering A 480 (1-2), 529-539. (2008).
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Uwagi
EN
1. This work partially was supported by the National Science Centre in Poland under the research grant ”Effect of hydrogen on structure and stress corrosion cracking of selected magnesium alloys from Mg-Y-RE-Zr and Mg-Al-RE systems” No. 2011/03/B/ST8/06387 and by Silesian University of Technology in grant BK-205/RM0/2019 (11/990/BK_19/0063).
PL
2. Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0114479c-5f32-4cc6-bb55-087077be2f21
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