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首页> 外文期刊>Electrochimica Acta >Purely inorganic coatings based on nanoparticles for magnesium alloys
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Purely inorganic coatings based on nanoparticles for magnesium alloys

机译:用于镁合金的基于纳米粒子的纯无机涂料

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摘要

The chemical nanotechnology is offering a chance to apply stable inorganic coatings onto magnesium alloys. The cast alloy AZ91 as well as the wrought alloy AZ31 could be dip-coated with aqueous dispersions based on commercially available silica particles and various additives. The high surface activity of the nanoparticles and appropriate additives, e.g. boron, aluminium or alkali salts, help to densify these coatings under moderate conditions even suitable for those thermally precarious magnesium alloys. Another coating technique is based on the electrophoretic deposition of nanoparticles already containing all sintering aids. These particles could be synthesised by a base-catalysed sol-gel process. Polydiethoxysiloxane can act as an adhesion promoter for these coatings. Additionally concentration gradients of different oxides within these particles can adjust the coating properties, too. Usually single coatings are very thin (200-500 nm). However, multiple coating applications as well as a process involving special particle mixtures lead to coatings with a thickness of up to several micrometers. Even after thermal treatment at 200 or 400 ℃ these coatings stay crack-free. The composition and texture of these coatings were studied using IR, atomic force microscopy (AFM), scanning electron microscopy (SEM) and other techniques. Electrochemical impedance measurements show an improvement of the corrosion performance by these coatings. The coating resistance is improving with the coating thickness.
机译:化学纳米技术提供了将稳定的无机涂层应用于镁合金的机会。铸造合金AZ91和锻造合金AZ31可以浸涂有基于市售二氧化硅颗粒和各种添加剂的水分散体。纳米颗粒和适当的添加剂,例如纳米颗粒的高表面活性。硼,铝或碱金属盐有助于在中等条件下使这些涂层致密化,甚至适用于那些热不稳定的镁合金。另一种涂覆技术是基于电泳沉积已经包含所有烧结助剂的纳米颗粒。这些颗粒可以通过碱催化的溶胶-凝胶法合成。聚二乙氧基硅氧烷可作为这些涂料的粘合促进剂。另外,这些颗粒中不同氧化物的浓度梯度也可以调节涂层性能。通常单个涂层非常薄(200-500 nm)。然而,多种涂层应用以及涉及特殊颗粒混合物的工艺导致涂层的厚度高达几微米。即使在200或400℃热处理后,这些涂层仍保持无裂纹。使用红外,原子力显微镜(AFM),扫描电子显微镜(SEM)和其他技术研究了这些涂层的组成和织构。电化学阻抗测量表明,这些涂层改善了腐蚀性能。涂层电阻随涂层厚度的增加而提高。

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