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Chromium-free conversion coating of aluminium-copper alloys

机译:铝 - 铜合金的无铬转化涂层

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摘要

Aluminium alloys are frequently pre-treated by a conversion coating before application of an organic coating in order to improve the corrosion resistance and adhesive properties of the surface and the corrosion resistance provided by the system. Chromate-containing conversion coatings are commonly used for this purpose. However, legislation limits future use of hexavalent chromium compounds due to their toxic and carcinogenic nature. Therefore, alternative, so-called chromium-free conversion coatings are being developed that are more environmentally-compliant.The purpose of the present work has therefore been to contribute to a better understanding of how the aluminium substrate affects the formation and properties of conversion coatings for adhesive bonding. In particular, a chrome-free zirconium-based conversion treatment process has been investigated as a possible replacement for conventional chromate conversion treatment. The influence of the conversion time on the thickness of the formed layer on pure aluminium was investigated using complementary surface analytical techniques. The conversion time was varied between 30 and 600 seconds.In this study, the structure and composition of zirconium-based chromium-free conversion coatings on magnetron sputtered superpure aluminium and a range of aluminium-copper alloys were characterised as a function of immersion time in the aqueous conversion bath to understand the mechanism of coating formation and protection. However, the presence of copper significantly influences the coating development and ultimately the performance of the conversion coatings formed on binary copper-containing aluminium alloys.The morphology and composition of the coatings have been probed using transmission electron microscopy, Rutherford backscattering spectroscopy and glow discharge optical emission spectroscopy, with loss of substrate through growth of the conversion coating also quantified. A comparison of the RBS spectra obtained for the superpure aluminium specimens after different immersion times revealed that zirconium (Zr) and oxygen (O) peaks were wider for longer immersion times, indicating thickening of the coating with increased immersion times. Thus, increasing the immersion time resulted in an increase in coating thickness but little change in coating composition occurred as determined by the RBS RUMP simulations. Alloying decreases the coating thickness, as well as metal consumption. Here, aspects of the corrosion behaviour of superpure aluminium and aluminium-copper alloys were also considered using electronoptical, electrochemical and surface analytical probing. The influence that short and prolonged treatment times exert on the performances of such conversion coating is discussed. The conversion coating formed after 60 s and 180 s of immersion in the zirconium-based conversion coating bath provide good corrosion resistance which can be attributed to the high stability of the compounds that constitute the surface oxide layer, and good adhesion properties.
机译:为了改善表面的耐腐蚀性和粘合性能以及系统提供的耐腐蚀性,经常在施加有机涂层之前通过转化涂层对铝合金进行预处理。为此通常使用含铬酸盐的转化涂层。但是,由于其有毒和致癌性,立法限制了六价铬化合物的未来使用。因此,正在开发更符合环境要求的替代性的所谓无铬转化膜。因此,本发明的目的是有助于更好地理解铝基材如何影响转化膜的形成和性能。用于粘接。特别地,已经研究了无铬的基于锆的转化处理工艺,以替代常规的铬酸盐转化处理。使用互补表面分析技术研究了转化时间对纯铝上形成层厚度的影响。转化时间在30到600秒之间变化。在这项研究中,磁控溅射超纯铝和一系列铝铜合金上的锆基无铬转化膜的结构和组成被表征为浸入时间的函数。在水转化浴中了解涂层形成和保护的机理。然而,铜的存在显着影响涂层的发展,并最终影响在含二元铜的铝合金上形成的转化膜的性能。已使用透射电子显微镜,卢瑟福背散射光谱和辉光放电光学对涂层的形态和成分进行了研究。发射光谱法,通过转化涂层的生长导致的基材损失也被量化。在不同的浸没时间后,对超纯铝样品获得的RBS光谱的比较显示,对于更长的浸没时间,锆(Zr)和氧(O)峰更宽,表明随着浸没时间的增加,涂层变厚。因此,增加浸入时间会导致涂层厚度增加,但是涂层组成几乎没有发生变化,这是通过RBS RUMP模拟确定的。合金化可减少涂层厚度以及金属消耗。在这里,还使用电子光学,电化学和表面分析探针来研究超纯铝和铝铜合金的腐蚀行为。讨论了缩短和延长处理时间对这种转化膜性能的影响。在基于锆的转化涂层浴中浸泡60 s和180 s后形成的转化涂层具有良好的耐腐蚀性,这归因于构成表面氧化物层的化合物的高稳定性和良好的附着性。

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