Properties of sodium molybdate-based compound corrosion inhibitor for hot-dip galvanized steel in marine environment

IF 2.7 4区 材料科学 Q3 ELECTROCHEMISTRY Corrosion Reviews Pub Date : 2023-01-23 DOI:10.1515/corrrev-2022-0043
Zhenkai Xu, L. Chen, Jingliang Han, Chengfei Zhu
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Abstract

Abstract Sodium molybdate (Na2MoO4) was selected as the corrosion inhibitor, compounded with benzimidazole, in order to prolong the service life of the hot-dip galvanized steel (HDGS) in the marine environment in this article. XRD, SEM/FESEM and EDS were used to characterize the micro-morphology and elemental composition of HDGS. Immersion corrosion test, Tafel polarization and EIS test were carried out to study the effect of compound inhibitor on the corrosion resistance of HDGS in the marine environment. The best proportion of compound inhibitor was added to the self-made waterborne polyurethane coating (WPUC), aiming to evaluate its influence on the coating performance in the marine environment by immersion corrosion test and EIS test. The results showed that Na2MoO4, as a passivation type corrosion inhibitor, bounded Zn at the active sites of HDGS coupons and created structural defects. Benzimidazole, as an adsorption type corrosion inhibitor, was attracted by electricity and adsorbed at the structural defects. Under the premise of 1 wt% total content, the optimal ratio of Na2MoO4 & benzimidazole was 9:1 and the corrosion inhibition efficiency was 99.62%. The corrosion current density of HDGS in the simulated seawater with compound inhibitor was 5.650 × 10−8 A/cm2, while that of HDGS in the simulated seawater without compound inhibitor was 1.483 × 10−5 A/cm2. The WPUC containing compound inhibitor had a small decrease in corrosion resistance due to defects created by doping at the beginning of immersion, then the compound inhibitor would play an active role in the corrosion process to make more than double the service life of WPUC.
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钼酸钠基复合缓蚀剂对海洋热镀锌钢的缓蚀性能
本文选用钼酸钠(Na2MoO4)作为缓蚀剂,与苯并咪唑复配,以延长热镀锌钢(HDGS)在海洋环境中的使用寿命。利用XRD、SEM/FESEM和EDS对HDGS的微观形貌和元素组成进行了表征。通过浸渍腐蚀试验、Tafel极化试验和EIS试验,研究了复合缓蚀剂对HDGS在海洋环境中耐腐蚀性能的影响。在自制的水性聚氨酯涂料(WPUC)中加入最佳比例的复合缓蚀剂,通过浸渍腐蚀试验和EIS试验,评价其对涂料在海洋环境中性能的影响。结果表明,Na2MoO4作为一种钝化型缓蚀剂,在HDGS试片的活性位点结合了Zn,并产生了结构缺陷。苯并咪唑作为一种吸附型缓蚀剂,被电吸引并吸附在结构缺陷处。在总含量为1wt%的条件下,Na2MoO4&苯并咪唑的最佳配比为9:1,缓蚀率为99.62%。HDGS在含有复合缓蚀剂的模拟海水中的腐蚀电流密度为5.650×10−8A/cm2,而在没有复合缓蚀器的模拟海中的腐蚀流密度为1.483×10−5A/cm2。含有WPUC的复合缓蚀剂由于在浸泡开始时掺杂产生的缺陷,其耐腐蚀性略有下降,然后复合缓蚀器将在腐蚀过程中发挥积极作用,使WPUC的使用寿命增加一倍以上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Corrosion Reviews
Corrosion Reviews 工程技术-材料科学:膜
CiteScore
5.20
自引率
3.10%
发文量
44
审稿时长
4.5 months
期刊介绍: Corrosion Reviews is an international bimonthly journal devoted to critical reviews and, to a lesser extent, outstanding original articles that are key to advancing the understanding and application of corrosion science and engineering in the service of society. Papers may be of a theoretical, experimental or practical nature, provided that they make a significant contribution to knowledge in the field.
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