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Development of an environmentally benign anticorrosion coating for aluminum alloy using green pigments and organofunctional silanes.

机译:使用绿色颜料和有机官能硅烷开发用于铝合金的环保型防腐涂料。

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摘要

Aerospace aluminum alloys such as Al alloy 2024-T3 and 7075-T6 are subject to localized corrosion due the existence of intermetallics containing Cu, Mg or Zn. Current protection measurement employs substantial use of chromate and high VOC organics, both of which are identified as environment and health hazards. The approach of this study is to utilize a combination of organofunctional silanes and a compatible inhibitor integrated into high-performance waterborne resins. First, an extensive pigment screening has been done to find replacements for chromates using the testing methodology for fast corrosion inhibition evaluation and pigment. Zinc phosphate and calcium zinc phosphomolybdate were found to have the best overall performance on Al alloys. Some new corrosion inhibitors were synthesized by chemical methods or modified by plasma polymerization for use in the coatings. Low-VOC, chromate-free primers (superprimer) were developed using these pigments with silane and acrylic-epoxy resins. The developed superprimer demonstrated good corrosion inhibition on aluminum substrates.The functions of inhibitor and silane in the coating were investigated. Both silane and inhibitor are critical for the performance of the superprimer. Silane was found to improve the adhesion of the coating to the substrate and also facilitate corrosion prevention. Addition of zinc phosphate to the coating improved the resistance of a scratched area against corrosion. The microstructure of the acrylic-epoxy superprimer coating was studied. SEM/EDAX revealed that the superprimer has a self-assembled stratified double-layer structure which accounts for the strong anti-corrosion performance of the zinc phosphate pigment. Zinc phosphate leaches out from the coating to actively protect the scratched area. The leaching of pigment was confirmed in the ICP-MS analysis and the leaching rate was measured. Coating-metal interface and the scribe of coated panels subjected to corrosion test was studied. ToF-SIMS studies confirmed the presence of silane at the interface and the hydrolysis of the silane. The abundant presence of silane was believed to improve the adhesion and also facilitate the corrosion prevention.The protection mechanism of the acrylic-epoxy superprimer was proposed. The self-assembled double-layer structure of the acrylic-epoxy superprimer consist of a less-penetrable hydrophobic layer (epoxy-dominated) on the top and a hydrophilic layer (acrylic-dominated) accommodating the inhibitors underneath. This unique structure of the acrylic-epoxy accounts for the good protection of the coating. Furthermore, the inhibition mechanism of zinc phosphate was explored and compared to those which have been reported. Based on the protection mechanism of the superprimer, electrodeposition was explored in order to achieve a more organized coating with a better engineered metal/coating interface. The electrodeposited coatings were found to have higher barrier property and anticorrosion performance.
机译:航空铝合金(如铝合金2024-T3和7075-T6)由于含有铜,镁或锌的金属间化合物的存在而受到局部腐蚀。当前的保护措施大量使用了铬酸盐和高VOC有机物,这两种物质均被确定为对环境和健康的危害。这项研究的方法是利用有机官能硅烷和兼容的阻聚剂的组合,将其整合到高性能水性树脂中。首先,已经进行了广泛的颜料筛选,以使用用于快速腐蚀抑制评估和颜料的测试方法找到铬酸盐的替代品。发现磷酸锌和磷钼酸钙锌在铝合金上具有最佳的整体性能。一些新的腐蚀抑制剂是通过化学方法合成的或通过等离子体聚合反应改性的,用于涂料中。低VOC,无铬底漆(超级底漆)是使用这些颜料与硅烷和丙烯酸环氧树脂共同开发的。研制的超级底漆对铝基材具有良好的缓蚀性能。研究了缓蚀剂和硅烷在涂料中的作用。硅烷和抑制剂都对超级底漆的性能至关重要。发现硅烷可改善涂层与基材的粘合力,也有助于防止腐蚀。在涂层中添加磷酸锌可改善划痕区域的耐腐蚀性。研究了丙烯酸-环氧超级底漆涂料的微观结构。 SEM / EDAX显示,超级底漆具有自组装的分层双层结构,这说明了磷酸锌颜料的强防腐性能。磷酸锌从涂层中浸出,以积极保护划痕区域。通过ICP-MS分析确认了颜料的浸出,并测定了浸出率。研究了涂层-金属界面和涂层板的划痕进行了腐蚀测试。 ToF-SIMS研究证实了界面处硅烷的存在以及硅烷的水解。硅烷的大量存在被认为可以改善附着力,也有助于防止腐蚀。提出了丙烯酸-环氧超级底漆的保护机理。丙烯酸-环氧超级底漆的自组装双层结构由顶部的渗透性较差的疏水层(环氧占主导)和下面容纳抑制剂的亲水层(丙烯酸占主导)组成。丙烯酸-环氧树脂的这种独特结构为涂层提供了良好的保护。此外,探索了磷酸锌的抑制机理并将其与已报道的那些进行了比较。基于超级底漆的保护机理,对电沉积进行了研究,以实现具有更好工程金属/涂层界面的更有条理的涂层。发现电沉积涂层具有更高的阻隔性能和防腐性能。

著录项

  • 作者

    Yin, Zhangzhang.;

  • 作者单位

    University of Cincinnati.;

  • 授予单位 University of Cincinnati.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 268 p.
  • 总页数 268
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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