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Sacrificial anode stability and polarization potential variation in a ternary Al-xZn-xMg alloy in a seawater-marine environment

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Abstract

In this paper, the effects of zinc (Zn) and magnesium (Mg) addition on the performance of an aluminum-based sacrificial anode in seawater were investigated using a potential measurement method. Anodic efficiency, protection efficiency, and polarized potential were the parameters used. The percentages of Zn and Mg in the anodes were varied from 2% to 8% Zn and 1% to 4% Mg. The alloys produced were tested as sacrificial anodes for the protection of mild steel in seawater at room temperature. Current efficiency as high as 88.36% was obtained in alloys containing 6% Zn and 1% Mg. The polarized potentials obtained for the coupled (steel/Al-based alloys) are as given in the Pourbaix diagrams, with steel lying within the immunity region/cathodic region and the sacrificial anodes within the anodic region. The protection offered by the sacrificial anodes to the steel after the 7th and 8th week was measured and protection efficiency values as high as 99.66% and 99.47% were achieved for the Al-6%Zn-1%Mg cast anode. The microstructures of the cast anodes comprise of intermetallic structures of hexagonal Mg3Zn2 and body-centered cubic Al2Mg3Zn3. These are probably responsible for the breakdown of the passive alumina film, thus enhancing the anode efficiency.

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References

  • Baeckmann VW, Shwenk W, Prinz W (1997. Cathodic protection handbook: Theory and practice of electrochemical protection processes. Gulf Publishing Company, Houston, 56, 124.

    Google Scholar 

  • Baxter D, Britton J, 2006. Offshore Cathodic Protection 101. 10851 Train Court, Houston, USA, 12, 48.

    Google Scholar 

  • Corrosion–Doctors.org/Corrosion-Thermodynamics/Pot ential-pHdiagram-water, htm, 2009.

  • Earnest WK, 2004. Corrosion protection for offshore pipelines. Corrosion Conntro Technologies, Dublin, 63.

    Google Scholar 

  • Gabriele DF, Canterbury JD, 2003. Corrosion behaviour of Magnesium sacrificial anodes in tap water. Corrosion and Protection Centre, Manchester, 51.

    Google Scholar 

  • Genesca J, Juareg J, 2007. Development and testing of galvanic anodes for cathodic protection. Contributions to Science Journal, 1(3), 331–334.

    Google Scholar 

  • Gurappa J, 1984. Corrosion Prevention and Control, India, 44, 69.

    Google Scholar 

  • Meillier A, 2000. A review of galvanic anode cathodic protection design procedure. Corrosion Control Services Limited, Telford, UK, 43–62.

    Google Scholar 

  • Metals Hand Books (MHB), 1990. Properties and selection; Nonferrous alloys and special–purpose material. American Society of Metals (ASM), Vol. 2, 143, 167.

    Google Scholar 

  • Muazu A, Yaro SA, 2011. Effects of zinc addition on the performance of Aluminium as sacrificial anode in seawater. Journal of Minerals and Materials Characterization and Engineering, 10(2), 185–198. DOI: 10.4236/jmmce.2011.102013

    Article  Google Scholar 

  • Shibli SMA, Archana SR, Muhammed PA, 2008. Development of nano Cerium oxide incorporated aluminium alloy sacrificial anode for marine applications. Corrosion Science, 50(8), 2232–2238. DOI: 10.1016/j.corsci.2008.06.017

    Article  Google Scholar 

  • Talbot DEJ, Talbot JDR, 1997. Corrosion science and technology. CRC Press, London, 27–103.

    Book  Google Scholar 

  • Unified Facilities Criteria (UFC), 2005. Cathodic protection. Department of Defence, USA, 34–42.

    Google Scholar 

Download references

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Correspondence to Malik Abdulwahab.

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Muazu, A., Aliyu, Y.S., Abdulwahab, M. et al. Sacrificial anode stability and polarization potential variation in a ternary Al-xZn-xMg alloy in a seawater-marine environment. J. Marine. Sci. Appl. 15, 208–213 (2016). https://doi.org/10.1007/s11804-016-1356-8

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  • DOI: https://doi.org/10.1007/s11804-016-1356-8

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