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A composite coating formed on AZ91D magnesium alloy by micro-arc oxidation and electrochemical deposition

机译:通过微弧氧化和电化学沉积在AZ91D镁合金上形成的复合涂层

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摘要

A composite coating was prepared by micro-arc oxidation and electrochemical deposition onto the polished magnesium alloy substrate. The effects of deposition voltage and deposition time on the surface morphologies, deposition mass and thickness of the biological composite coating were studied. The phase compositions, surface morphologies, element contents and thickness of the coatings were investigated by X-ray diffraction, scanning electron microscope with energy dispersive spectroscopy and thickness gauge, respectively. The corrosion resistance of the coatings in the simulated body fluid (SBF) was evaluated by potentiodynamic polarisation tests and immersion tests. Finally, the mechanical properties of the coatings after immersion were characterised by tensile fatigue testing machine (INSTRON8801). The results showed that the optimal deposition voltage and deposition time was 5 V and 120 min. The duplex treatment dramatically improved the corrosion resistance and the fatigue life of the magnesium alloys in SBF solution. Therefore, the composite coating with potential bioactivity can be a candidate for magnesium alloys as biomedical materials.
机译:通过微弧氧化和电化学沉积在抛光的镁合金基底上制备复合涂层。研究了沉积电压和沉积时间对表面形态,沉积质量和生物复合涂层厚度的影响。通过X射线衍射研究了涂层的相组合物,表面形态,元素含量和厚度,扫描电子显微镜分别具有能量分散光谱和厚度计。通过电位偏振试验和浸渍试验评估模拟体液(SBF)中涂层的耐腐蚀性。最后,通过拉伸疲劳试验机表征浸渍后涂层的机械性能(Instron8801)。结果表明,最佳沉积电压和沉积时间为5 V和120分钟。双相治疗显着提高了SBF溶液中镁合金的耐腐蚀性和疲劳寿命。因此,具有潜在生物活性的复合涂层可以是镁合金作为生物医学材料的候选物。

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