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Investigation of the Degradation Mechanisms of Particulate Reinforced Epoxy Coatings and Zinc-Rich Coatings Under an Erosion and Corrosion Environment for Oil and Gas Industry Applications

机译:石油和天然气工业在腐蚀和腐蚀环境下颗粒增强环氧涂料和富锌涂料的降解机理研究

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摘要

During oil and gas production and transportation, the presence of an oil-sand slurry, together with the presence of CO2, H2S, oxygen, and seawater, create an erosive/abrasive and corrosive environment for the interior surfaces of undersea pipelines transporting oil and gas from offshore platforms. Erosion/wear and corrosion are often synergic processes leading to a much greater material loss of pipeline cross-section than that caused by each individual process alone.;Both organic coatings and metallic sacrificial coatings have been widely employed to provide protection to the pipeline steels against corrosion through barrier protection and cathodic protection, and these protection mechanisms have been well studied. However, coating performance under the synergic processes of erosion/wear and corrosion have been much less researched and coating degradation mechanisms when erosion/wear and corrosion are both going on has not been well elucidated.;In the work presented in this dissertation, steel panels coated with filler reinforced epoxy coatings and carbon nanotubes (CNTs) reinforced zinc-rich coatings have been evaluated under erosion/wear followed by an exposure to a corrosive environment. Electrochemical tests and material characterization methods have been applied to study the degradation mechanisms of the coatings during the tests and coating degradation mechanisms have been proposed.;While organic coatings with a lower amount of filler particles provided better protection in a corrosive environment alone and in solid particle impingement erosion testing alone, organic coatings with a higher amount of filler particles showed better performance during wear testing alone. A higher amount of filler particles was also beneficial in providing protection against wear and corrosion environment, and erosion and corrosion environment. Coating thickness played a significant role in the barrier properties of the coatings under both erosion and corrosion tests. When the organic coatings were exposed to a corrosive environment with presence of H2S, thicker coatings provided better protection regardless of the amount and types of filler particles present in the coatings.;For zinc-rich coatings, coatings with CNTs provided better barrier protection for the steel substrate than traditional zinc-rich coatings in a corrosive environment alone. However, the CNTs-filled zinc-rich epoxy coatings did not provide adequate protection when the coated specimens were exposed to erosion and corrosion.
机译:在油气生产和运输过程中,油砂浆的存在以及CO2,H2S,氧气和海水的存在,为海底运输石油和天然气的管道的内表面创造了腐蚀/磨蚀和腐蚀的环境来自海上平台。腐蚀/磨损和腐蚀通常是协同作用的过程,导致管道横截面的材料损失比单独的每个过程要大得多。;有机涂料和金属牺牲涂料已被广泛用于为管道钢提供抗腐蚀保护通过阻挡层保护和阴极保护来防止腐蚀,并且已经对这些保护机制进行了深入研究。然而,关于腐蚀/磨损和腐蚀协同作用下的涂层性能的研究还很少,并且当腐蚀/磨损和腐蚀都同时发生时涂层的降解机理还没有得到很好的阐明。已经评估了用填料增强的环氧涂料和碳纳米管(CNT)增强的富锌涂料在腐蚀/磨损下,然后暴露在腐蚀性环境下的性能。已应用电化学测试和材料表征方法研究了涂层在测试过程中的降解机理,并提出了涂层降解机理。虽然填料含量较低的有机涂层在单独的腐蚀环境和固体环境中提供了更好的保护单独进行颗粒冲击侵蚀测试时,仅在磨损测试过程中,含有大量填料颗粒的有机涂料就具有更好的性能。较高量的填料颗粒还有利于提供抗磨损和腐蚀环境以及腐蚀和腐蚀环境的保护。涂层厚度在腐蚀和腐蚀测试下均对涂层的阻隔性能起着重要作用。当有机涂料暴露在有H2S的腐蚀环境中时,无论涂料中填料颗粒的数量和类型如何,较厚的涂料都可以提供更好的保护;对于富锌涂料,含CNT的涂料可以为涂料提供更好的阻隔保护钢基材比仅在腐蚀环境下的传统富锌涂料好。然而,当涂覆的样品暴露于腐蚀和腐蚀下时,CNTs填充的富锌环氧涂料不能提供足够的保护。

著录项

  • 作者

    Wang, Dailin.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Materials science.;Engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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