Evaluation of Corrosion Inhibition of Linseed Oil-Based Inhibitors on Aluminum-8088 Alloy
DOI:
https://doi.org/10.48165/Keywords:
Aluminium 8088, Linseed Oil, Corrosion, Weight loss, Polarization, SEMAbstract
There is a high demand for eco-friendly, effective, and high performance corrosion inhibitors for industrial applications. Thus, the corrosion property of aluminum alloys was studied in linseed oil. Potentiodynamic polarization and weight loss analysis were used to study the corrosion inhibition mechanism of the linseed oil. The linseed oil showed the highest inhibition efficiency of 87.01% at 1000 ppm. A high efficiency of 86.03% was achieved even after 24h of exposure. The potentiodynamic polarization test showed that the linseed oil is a mixed-type inhibitor. The surface morphology of the uninhibited and inhibited specimens examined by a scanning electron microscope.
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Mishra, R. (2020). Study the effect of pre corrosion on mechanical properties and fatigue life of aluminum alloy 8011. Mater. Today: Proc. 25, 602−609.
Luo, C. (2011). Role of microstructure on corrosion control of AA2024-T3 aluminium alloy; University of Manchester. Manchester: Faculty of Engineering and Physical Sciences.
Liew, Y.; Ö rnek, C.; Pan, J.; Thierry, D.; Wijesinghe, S.; Blackwood, D. J. (2021). Towards understanding micro-galvanic activities in localised corrosion of AA2099 aluminium alloy. Electrochim. Acta, 392, No. 139005.
Ormellese, M.; Lazzari, L.; Goidanich, S.; Fumagalli, G.; Brenna, A. (2009). A study of organic substances as inhibitors for chloride-induced corrosion in concrete. Corros. Sci. 51, 2959−2968.
Hu, R. G.; Zhang, S.; Bu, J. F.; Lin, C. J.; Song, G. L. (2012). Recent progress in corrosion protection of magnesium alloys by organic coatings. Prog. Org. Coat. 73, 129−141.
Kendig, M.; Jeanjaquet, S.; Addison, R.; Waldrop, J. (2001). Role of hexavalent chromium in the inhibition of corrosion of aluminum alloys. Surf. Coat. Technol. 140, 58−66.
Pokorny, P.; Tej, P.; Szelag, P. (2016). Chromate conversion coatings and their current application. Metalurgija, 55, 253−256.
Kumar, L.; Bharadvaja, N. (2020). Microbial remediation of heavy metals. Microbial Bioremediation & Biodegradation. 49−72.
Weiss, E. J. (1999). Preliminary ecological risk assessment to assess the implications of replacing chromium plating with tantalum coating.
Ayele, A.; Godeto, Y. G. (2021). Bioremediation of chromium by microorganisms and its mechanisms related to functional groups. J. Chem. 2021, No. 7694157.
Guo, L.; Obot, I. B.; Zheng, X.; Shen, X.; Qiang, Y.; Kaya, S.; Kaya, C. (2017). Theoretical insight into an empirical rule about organic corrosion inhibitors containing nitrogen, oxygen, and sulfur atoms. Appl. Surf. Sci. 406, 301−306.
Assad, H.; Kumar, A. (2021). Understanding functional group effect on corrosion inhibition efficiency of selected organic compounds. J. Mol. Liq. 344, No. 117755.
Verma, C.; Verma, D. K.; Ebenso, E. E.; Quraishi, M. A. (2018). Sulfur and phosphorus heteroatom-containing compounds as corrosion inhibitors: An overview. Heteroat. Chem. 29, No. e21437.