Abrasion and Cavitation Erosion Resistance of Multi-Layer Dip Coated Sol-Gel Coatings on AA2024-T3

M. Hegde, Y. Kavanagh, B. Duffy, E. Tobin
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引用次数: 4

Abstract

AA2024-T3 are widely used in various applications because of their exceptional physical properties. However, they are susceptible to corrosion and cavitation erosion in aggressive environments due to high concentration of copper. Sol-gel coatings in the field of corrosion prevention are emerging. Improved thickness of coatings significantly improves the barrier effect of the coatings, thereby improving their operational-life in industrial applications. To date, a limited amount of work has been carried out in determining the effect of hybrid sol-gel coatings on abrasion and cavitation erosion of AA2024-T3. The present study investigates the effect of thickness of the coatings on morphology, corrosion, abrasion and cavitation erosion properties of the prepared hybrid sol-gel coatings deposited on AA2024-T3 surfaces. The hybrid sol-gels have been synthesized from 3-trimethoxysilylpropylmethacrylate (MAPTMS), and a zirconium complex prepared from the chelation of zirconium n-propoxide (ZPO), and methacrylic acid (MAAH). AA-2024 T3 were coated using single-dip, double-dip and triple-dip. Abrasion and cavitation erosion tests were performed according to the relevant standards. Structural damage caused by corrosion, abrasion and cavitation erosion was studied by Optical Microscope and Scanning Electron Microscope (SEM). Corrosion protection performance of the coatings was tested using Open Circuit Potential (OCP) and Potentiodynamic polarization (PDS). Results indicated that the multilayer coated samples improved the corrosion, cavitation erosion and abrasion resistance of AA2024-T3. Hence, the prepared silica-based coatings can be proposed as a potential choice for marine renewable energy applications.
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AA2024-T3多层浸涂溶胶-凝胶涂层的耐磨性和空化侵蚀性能
AA2024-T3具有优异的物理性能,广泛应用于各种领域。然而,由于铜的高浓度,它们在侵略性环境中容易受到腐蚀和空化侵蚀。溶胶-凝胶涂料在防腐领域正在兴起。涂层厚度的提高显著提高了涂层的阻隔效果,从而提高了其在工业应用中的使用寿命。迄今为止,在确定混合溶胶-凝胶涂层对AA2024-T3的磨损和空化侵蚀的影响方面进行了有限的工作。研究了涂层厚度对制备的复合溶胶-凝胶涂层在AA2024-T3表面的形貌、腐蚀、磨损和空化侵蚀性能的影响。以3-三甲氧基甲基丙烯酸甲酯(MAPTMS)和正丙氧化锆(ZPO)与甲基丙烯酸(MAAH)螯合而成的锆配合物为原料合成了杂化溶胶-凝胶。AA-2024 T3采用单浸、双浸和三浸涂覆。按照相关标准进行了磨损和空化侵蚀试验。利用光学显微镜和扫描电镜研究了腐蚀、磨损和空化侵蚀引起的结构损伤。采用开路电位(OCP)和动电位极化(PDS)测试了涂层的防腐性能。结果表明,多层涂层改善了AA2024-T3的腐蚀、空化侵蚀和耐磨性。因此,所制备的硅基涂料可以作为海洋可再生能源应用的潜在选择。
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