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首页> 外文期刊>Journal of coatings technology and research >Corrosion inhibition of aluminum by organic coatings formulated with calcium exchange silica pigment
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Corrosion inhibition of aluminum by organic coatings formulated with calcium exchange silica pigment

机译:钙交换二氧化硅颜料配制的有机涂料对铝的缓蚀作用

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摘要

One of the first commercial ion-exchange anticorrosive pigments to be developed was Shieldex~® (Si/Ca). Its proposed corrosion protection mechanism, based on the retention of aggressive cations and the subsequent release of calcium cations, has created certain controversy. A number of studies have focused on the anticorrosive behavior of this pigment on carbon steel and galvanized steel to replace chromates (Cr~(6+)) as inhibitor pigment, but none has considered its performance on aluminum or aluminum alloys. In this research, alkyd coatings have been formulated with Si/ Ca pigment at different concentrations and applied on aluminum 1050 (Al 99.5%) specimens. These specimens have then been subjected to accelerated tests (condensing humidity, salt spray, and Kesternich) and natural weathering in atmospheres of different aggres-sivity. Corrosion performance has been also evaluated in the laboratory by electrochemical impedance spectroscopy. The study has also considered an organic coating with zinc chromate anticorrosive pigment for comparative purposes. The results obtained with organic coatings formulated with Si/Ca pigments confirm that they provide corrosion protection of the underlying aluminum substrate, even improving the behavior of the reference zinc chromate in some environmental conditions.
机译:Shieldex®(Si / Ca)是最早开发的商业离子交换防腐颜料之一。基于保留侵蚀性阳离子并随后释放钙阳离子,其提出的腐蚀防护机制引起了一定争议。许多研究都集中在这种颜料对碳钢和镀锌钢的防腐性能上,以代替铬酸盐(Cr〜(6+))作为抑制剂颜料,但没有人考虑其在铝或铝合金上的性能。在这项研究中,已使用不同浓度的Si / Ca颜料配制了醇酸树脂涂料,并应用于铝1050(铝99.5%)样品。然后对这些样品进行加速测试(冷凝湿度,盐雾和Kesternich),并在不同聚集度的气氛中进行自然风化。腐蚀性能也已在实验室通过电化学阻抗谱进行了评估。为了进行比较,研究还考虑了使用铬酸锌防腐颜料的有机涂层。使用由Si / Ca颜料配制的有机涂层获得的结果证实,它们可以为下面的铝基材提供腐蚀保护,甚至可以改善某些环境条件下参考铬酸锌的性能。

著录项

  • 来源
    《Journal of coatings technology and research》 |2013年第2期|209-217|共9页
  • 作者单位

    Department of Surfaces Engineering, Corrosion and Durability, National Centre for Metallurgical Research (CENIM/CSIC), Av. Gregorio del Amo, 8, 28040 Madrid, Spain,Material Innovation Institute (M2i), Novel Aerospace Materials Group, Faculty of Aerospace Engineering, Delft University of Technology, Kluyverweg 1, 2629 HS Delft, The Netherlands;

    Department of Surfaces Engineering, Corrosion and Durability, National Centre for Metallurgical Research (CENIM/CSIC), Av. Gregorio del Amo, 8, 28040 Madrid, Spain;

    Department of Surfaces Engineering, Corrosion and Durability, National Centre for Metallurgical Research (CENIM/CSIC), Av. Gregorio del Amo, 8, 28040 Madrid, Spain;

    Department of Surfaces Engineering, Corrosion and Durability, National Centre for Metallurgical Research (CENIM/CSIC), Av. Gregorio del Amo, 8, 28040 Madrid, Spain;

    Department of Surfaces Engineering, Corrosion and Durability, National Centre for Metallurgical Research (CENIM/CSIC), Av. Gregorio del Amo, 8, 28040 Madrid, Spain;

    Department of Surfaces Engineering, Corrosion and Durability, National Centre for Metallurgical Research (CENIM/CSIC), Av. Gregorio del Amo, 8, 28040 Madrid, Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Aluminum; Ion-exchange pigments; Organic coatings; EIS;

    机译:铝;离子交换颜料;有机涂料;信息系统;

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