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Spark anodizing of β-Ti alloy for wear-resistant coating

机译:β-Ti合金的火花阳极氧化,用于耐磨涂层

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摘要

Spark anodizing of a bcc solid solution Ti–15% V–3% Al–3% Cr–3% Sn alloy has been performed in an alkaline electrolyte containing aluminate and phosphate using dc-biased ac anodizing to form a wear-resistant coating on the alloy. The coating consists mainly of Al2TiO5, with rutile and γ-Al2O3 being present as minor oxide phases. Depth profiles of the coating, examined by glow discharge optical emission spectroscopy, have revealed that aluminium species, highly enriched in the coating, distribute uniformly in the coating, while phosphorus species, incorporated from the electrolyte, are located mainly in the inner part of the coating near the coating/alloy interface. The location of the phosphorus species should be associated with the porous nature of the coating, allowing access of the electrolyte directly to the inner parts of the coating. The porosity of the coating is reduced by anodizing to high voltages. The marked improvement of the wear resistance by the coating has been demonstrated from a pin-on-disc wear test.
机译:在含铝酸盐和磷酸盐的碱性电解液中,使用直流偏置的交流阳极氧化对密闭cc固溶体进行火花阳极氧化Ti-15%V-3%Al-3%Cr-3%Sn合金,在其上形成耐磨涂层合金。涂层主要由Al2TiO5组成,金红石和γ-Al2O3以次要氧化物相存在。通过辉光放电光发射光谱法检查的镀层深度分布表明,镀层中高度富集的铝物质在镀层中均匀分布,而从电解质中吸收的磷物质则主要位于镀层的内部。涂层/合金界面附近的涂层。磷物质的位置应与涂层的多孔性有关,以允许电解质直接进入涂层的内部。通过阳极氧化至高电压可以降低涂层的孔隙率。圆盘针式磨损试验已证明涂层显着改善了耐磨性。

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