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Volume 25 Issue 11
Nov.  2018
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Xiao-guang Sun, Peng Lin, Cheng Man, Jian Cui, Hai-bo Wang, Chao-fang Dong, and Xiao-gang Li, Prediction model for atmospheric corrosion of 7005-T4 aluminum alloy in industrial and marine environments, Int. J. Miner. Metall. Mater., 25(2018), No. 11, pp. 1313-1319. https://doi.org/10.1007/s12613-018-1684-6
Cite this article as:
Xiao-guang Sun, Peng Lin, Cheng Man, Jian Cui, Hai-bo Wang, Chao-fang Dong, and Xiao-gang Li, Prediction model for atmospheric corrosion of 7005-T4 aluminum alloy in industrial and marine environments, Int. J. Miner. Metall. Mater., 25(2018), No. 11, pp. 1313-1319. https://doi.org/10.1007/s12613-018-1684-6
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研究论文

Prediction model for atmospheric corrosion of 7005-T4 aluminum alloy in industrial and marine environments

  • 通讯作者:

    Xiao-guang Sun    E-mail: sunxiaoguang@cqsf.com

  • Accelerated corrosion tests of the 7005-T4 aluminum alloy were conducted to determine a suitable service life prediction method by using alternating wet-dry cycles in three kinds of solutions. The morphology and composition analysis of the corrosion product revealed that slight corrosion occurred on the surfaces of the samples immersed in a 0.25wt% Na2S2O8 solution. However, pitting corrosion occurred on the surfaces of the samples immersed in a 3.5wt% NaCl solution, whereas exfoliation corrosion occurred on the surfaces of the samples immersed in a mixture of 0.25wt% Na2S2O8 and 3.5wt% NaCl solutions. A power exponent relationship was observed between the mass loss and exposure time of the 7005-T4 aluminum alloy immersed in the three kinds of solutions. In the mixture of 0.25wt% Na2S2O8 and 3.5wt% NaCl solutions, the mass loss of the aluminum alloy yielded the maximum value. Based on the calculation of the correlation coefficients, the alternating wet-dry procedure in a 3.5wt% NaCl solution could be used to predict the corrosion behavior of 7005-T4 aluminum alloy exposed in the atmosphere of Qingdao, China. The prediction model is as follows:T=104.28·t0.91, where T is the equivalent time and t is the exposure time.
  • Research Article

    Prediction model for atmospheric corrosion of 7005-T4 aluminum alloy in industrial and marine environments

    + Author Affiliations
    • Accelerated corrosion tests of the 7005-T4 aluminum alloy were conducted to determine a suitable service life prediction method by using alternating wet-dry cycles in three kinds of solutions. The morphology and composition analysis of the corrosion product revealed that slight corrosion occurred on the surfaces of the samples immersed in a 0.25wt% Na2S2O8 solution. However, pitting corrosion occurred on the surfaces of the samples immersed in a 3.5wt% NaCl solution, whereas exfoliation corrosion occurred on the surfaces of the samples immersed in a mixture of 0.25wt% Na2S2O8 and 3.5wt% NaCl solutions. A power exponent relationship was observed between the mass loss and exposure time of the 7005-T4 aluminum alloy immersed in the three kinds of solutions. In the mixture of 0.25wt% Na2S2O8 and 3.5wt% NaCl solutions, the mass loss of the aluminum alloy yielded the maximum value. Based on the calculation of the correlation coefficients, the alternating wet-dry procedure in a 3.5wt% NaCl solution could be used to predict the corrosion behavior of 7005-T4 aluminum alloy exposed in the atmosphere of Qingdao, China. The prediction model is as follows:T=104.28·t0.91, where T is the equivalent time and t is the exposure time.
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    • [1]
      C.B. Zheng, B.H. Yan, K. Zhang, and G. Yi, Electrochemical investigation on the hydrogen permeation behavior of 7075-T6 Al alloy and its influence on stress corrosion cracking, Int. J. Miner. Metall. Mater., 22(2015), No. 7, p. 729.
      [2]
      A.M. Beccaria, E. Mor, and G. Poggi, Examination of aluminium corrosion products in marine or industrial marine atmosphere, Mater. Corros., 34(1983), No. 5, p. 236.
      [3]
      S. Lyon, G. Thompson, J. Johnson, G. Wood, and J. Ferguson, Accelerated atmospheric corrosion testing using a cyclic wet/dry exposure test:aluminium, galvanized steel, and steel, Corrosion, 43(1987), No. 12, p. 719.
      [4]
      D.L. Li, G.Q. Fu, M.Y. Zhu, Q. Li, and C.X. Yin, Effect of Ni on the corrosion resistance of bridge steel in a simulated hot and humid coastal-industrial atmosphere, Int. J. Miner. Metall. Mater., 25(2018), No. 3, p. 325.
      [5]
      R.T. Foley and T.H. Nguyen, The chemical nature of aluminium corrosion V. Energy transfer in aluminium dissolution, J. Electrochem. Soc., 13(1982), No. 27, p. 464.
      [6]
      T. Graedel, Corrosion mechanisms for aluminium exposed to the atmosphere, J. Electrochem. Soc., 136(1989), No. 4, p. 204.
      [7]
      T. Li, X.G. Li, C.F. Dong, and Y.F. Cheng, Characterization of atmospheric corrosion of 2A12 aluminium alloy in tropical marine environment, J. Mater. Eng. Perform., 19(2010), No. 4, p. 591.
      [8]
      X.K. Yang, L.W. Zhang, S.Y. Zhang, M. Liu, K. Zhou, and X.L. Mu, Properties degradation and atmospheric corrosion mechanism of 6061 aluminium alloy in industrial and marine atmosphere environments, Mater. Corros., 68(2017), No. 5, p. 529.
      [9]
      D.B. Blücher, J.E. Svensson, and L.G. Johansson, Influence of ppb levels of SO2 on the atmospheric corrosion of aluminium in the presence of NaCl, J. Electrochem. Soc., 152(2005), No. 10, p. B397.
      [10]
      S.Q. Sun, Q.F. Zheng, D.F. Li, and J.G. Wen, Long-term atmospheric corrosion behaviour of aluminium alloys 2024 and 7075 in urban, coastal and industrial environments, Corros. Sci., 51(2009), No. 4, p. 719.
      [11]
      M. Kouřil, P. Novák, and M. Bojko, Threshold chloride concentration for stainless steels activation in concrete pore solutions, Cem. Concr. Res., 40(2010), No. 3, p. 431.
      [12]
      N. Ebrahimi, M.H. Moayed, and A. Davoodi, Critical pitting temperature dependence of 2205 duplex stainless steel on dichromate ion concentration in chloride medium, Corros. Sci., 53(2011), No. 4, p. 1278.
      [13]
      S. Hastuty, A. Nishikata, and T. Tsuru, Pitting corrosion of Type 430 stainless steel under chloride solution droplet, Corros. Sci., 52(2010), No. 6, p. 2035.
      [14]
      B. Deng, Y.M. Jiang, J. Gong, C. Zhong, J. Gao, and J. Li, Critical pitting and repassivation temperatures for duplex stainless steel in chloride solutions, Electrochim. Acta., 53(2008), No. 16, p. 5220.
      [15]
      E.C. Souza, S.M. Rossitti, and J.M.D.A. Rollo, Influence of chloride ion concentration and temperature on the electrochemical properties of passive films formed on a superduplex stainless steel, Mater. Charact., 61(2010), No. 2, p. 240.
      [16]
      M.A. Arshadi, J.B. Johnson, and G.C. Wood, The influence of an isobutane-SO2 pollutant system on the earlier stages of the atmospheric corrosion of metals, Corros. Sci., 23(1983), No. 7, p. 763.
      [17]
      S. Syed. Atmospheric corrosion of carbon steel at marine sites in Saudi Arabia, Mater. Corros., 61(2015), No. 3, p. 238.
      [18]
      F. Corvo, T. Perez, L.R. Dzib, Y. Martin, A. Castañeda, E. Gonzalez, and J. Perez, Outdoor-indoor corrosion of metals in tropical coastal atmospheres, Corros. Sci., 50(2008), No. 1, p. 220.
      [19]
      D. de la Fuente, E. Otero-Huerta, and M. Morcillo, Studies of long-term weathering of aluminium in the atmosphere, Corros. Sci., 49(2007), No. 7, p. 3134.

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