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Graphene Reinforced Composites as Protective Coatings for Oil and Gas Pipelines

机译:石墨烯增强复合材料作为油气管道的保护涂料

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摘要

Corrosion and corrosion-induced damage have resulted mostly in malfunctions and sometimes even in failures of metallic structures, including oil and gas pipelines. In this study, new high-performance composite coatings were developed by incorporating nanoparticles in the polymer resins with applications to oil and gas pipelines. The graphene nanoplatelets under different concentrations were used to prepare the epoxy-based nanocomposites and were then evaluated through mechanical and electrical tests. The integration of high-speed disk and ultrasonication were adopted as the dispersion technique to overcome nanoparticle agglomeration. Electron microscopy techniques were used to investigate the agglomeration. The new composites were qualitatively and quantitatively evaluated in terms of contact angle, surface roughness, adhesion to the substrate, corrosion resistance, and abrasion resistance. The results suggested that the composite with 0.5~1.0 wt.% of the graphene nanofillers led to the largest improvement in both mechanical and electrochemical properties. Distribution of nanoparticles in the matrix was observed using scanning electron microscopy and surface roughness using atomic force microscopy. Large agglomeration that was observed at the higher concentrations mainly resulted in the reduction of corrosion resistance and abrasion resistance.
机译:腐蚀和腐蚀引起的损坏大多导致故障,有时甚至导致金属结构(包括油气管道)的故障。在这项研究中,通过将纳米粒子掺入聚合物树脂中来开发新的高性能复合涂料,并将其应用于石油和天然气管道。使用不同浓度的石墨烯纳米片制备环氧基纳米复合材料,然后通过机械和电气测试对其进行评估。采用高速圆盘与超声技术相结合的分散技术克服了纳米粒子的团聚。电子显微镜技术用于研究团聚。从接触角,表面粗糙度,对基材的粘附性,耐腐蚀性和耐磨性方面对新复合材料进行了定性和定量评估。结果表明,含有0.5〜1.0 wt。%石墨烯纳米填料的复合材料在机械和电化学性能方面均产生了最大的改善。使用扫描电子显微镜观察纳米颗粒在基质中的分布,使用原子力显微镜观察表面粗糙度。在较高浓度下观察到大的团聚主要导致耐腐蚀性和耐磨性的降低。

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