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GRAPHITE NANOPLATELETS-EPOXY COMPOSITES FOR ANTI-CORROSION COATINGS

机译:耐腐蚀涂料用石墨纳米颗粒-环氧树脂复合材料

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In this study, graphite nanoplatelets/epoxy composite anticorrosive coating was prepared by using waterborne epoxy resin emulsion as the matrix and graphite nanoplatelets as filler. In order to improve the dispersibility of graphite nanoplatelets, the graphite nanoplatelets were firstly oxidized at high temperature, and the suitable oxidation conditions were selected by infrared spectroscopy. The results showed that the calcined graphite microsheets had better oxidation effect at 700°C for 0.5 h; The graphite nanoplatelets were promoted to be dispersed, and the graphite microsheets surface- treated with the CS-311 coupling agent were respectively prepared by using three different dispersing agents. The best type of dispersant was discussed by metallographic microscopy and sal-fog corrosion testing. The results show that the anticorrosion coating with dispersant BYK-190 has the best dispersion effect and corrosion resistance. After determining the dispersant, a series of anticorrosion coatings were prepared using graphite nanoplatelets as a single variable. Through salt spray test, metallographic microscope test, electrochemical test, mechanical property test and other tests, the influence of the amount of graphite nanoplatelets on the performance of anticorrosive coatings was discussed, and the optimum amount of graphite nanoplatelets was determined. The results show that: 0.8% graphite nanoplatelets anticorrosion coating has good dispersion effect, and has the best corrosion resistance, and also has good mechanical properties such as hardness and impact strength.
机译:本研究以水性环氧树脂乳液为基质,以石墨纳米片为填料,制备了石墨纳米片/环氧复合防腐涂料。为了提高石墨纳米片的分散性,首先将石墨纳米片在高温下氧化,然后通过红外光谱法选择合适的氧化条件。结果表明,煅烧后的石墨微片在700℃下氧化0.5h有较好的氧化效果。促进石墨纳米片的分散,并通过使用三种不同的分散剂分别制备经CS-311偶联剂表面处理的石墨微片。金相显微镜和sal-雾腐蚀测试讨论了最佳分散剂类型。结果表明,采用BYK-190分散剂的防腐涂料具有最佳的分散效果和耐蚀性。确定分散剂后,使用石墨纳米片作为单变量制备了一系列防腐涂料。通过盐雾试验,金相显微镜试验,电化学试验,力学性能试验等试验,探讨了石墨纳米片数量对防腐涂层性能的影响,确定了石墨纳米片的最佳用量。结果表明:0.8%的石墨纳米片防腐涂层具有良好的分散效果,具有最佳的耐蚀性,并具有良好的硬度,冲击强度等机械性能。

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