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Microstructure and properties of ceramic coatings produced on 2024 aluminum alloy by microarc oxidation

机译:2024铝合金微弧氧化制备陶瓷涂层的组织与性能

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摘要

The microstructures of the microarc oxidation coatings and 2024 aluminum alloy substrate were observed using the scanning electron microscope (SEM) and the phase composition of the coatings was analyzed by X-ray diffraction (XRD). Furthermore, the profiles of the nanohardness, H, and elastic modulus, E, along the coating depth were first determined using the mechanical properties microprobe. The microarc oxidation coatings consist of two layers—a loose layer and a compact layer. The H and E in the compact layer are about 18–32 GPa, 280–390 GPa, respectively. The H and E profiles are similar, and both of them exhibit a maximum value at a same depth of the coatings. The distribution of α-Al2O3 phase content determines the H and E profiles in the coatings. The changes of α-Al2O3 and γ-Al2O3 contents result from the different cooling rates of the molten alumina in the microarc discharge channel at the different depths of the coatings. After the microarc oxidation treatment, the microstructure of the alloy substrate, even near the Al/Al2O3 interface, has not been changed.
机译:用扫描电子显微镜(SEM)观察微弧氧化涂层和2024铝合金基材的微观结构,并通过X射线衍射(XRD)分析涂层的相组成。此外,首先使用机械性能的微探针确定了沿着涂层深度的纳米硬度H和弹性模量E的分布。微弧氧化涂层由两层组成:疏松层和致密层。致密层中的H和E分别约为18-32 GPa,280-390 GPa。 H和E轮廓相似,并且在相同的涂层深度下它们都显示出最大值。 α-Al2 O3 相含量的分布决定了涂层中的H和E分布。 α-Al2 O3 和γ-Al2 O3 含量的变化是由于微弧放电通道中不同深度的熔融氧化铝的冷却速率不同所致。涂料。经过微弧氧化处理后,即使在Al / Al2 O3 界面附近,合金基底的微观结构也没有改变。

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  • 来源
    《Journal of Materials Science》 |2001年第11期|2615-2619|共5页
  • 作者单位

    Key Laboratory for Radiation Beam Technology and Materials Modification Institute of Low Energy Nuclear Physics Beijing Normal University;

    Key Laboratory for Radiation Beam Technology and Materials Modification Institute of Low Energy Nuclear Physics Beijing Normal University;

    Key Laboratory for Radiation Beam Technology and Materials Modification Institute of Low Energy Nuclear Physics Beijing Normal University;

    Key Laboratory for Radiation Beam Technology and Materials Modification Institute of Low Energy Nuclear Physics Beijing Normal University;

    Key Laboratory for Radiation Beam Technology and Materials Modification Institute of Low Energy Nuclear Physics Beijing Normal University;

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