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SBF下镁锌钙合金耐蚀性能和耐磨性能研究
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Study on Corrosion Resistance and Friction and Wear Properties of Mg-Zn-Ca Alloy under SBF
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    摘要:

    面向生物医用镁合金,用Zn、Ca元素微合金化和大挤压比变形工艺制备了Mg-Zn-Ca三元合金,通过金相分析,扫描电镜分析手段对材料的显微组织进行了表征;根据应用场景,在人体模拟体液(SBF)中通过常规电化学测试、微区电化学测试相结合综合评估了该合金的耐蚀性能.同时,通过摩擦磨损测试对材料的滑动磨损性能进行了试验分析.结果表明:通过微合金化和热挤压加工,制备出的合金组织为单相固溶体,合金晶粒尺寸较为均匀,自腐蚀电流密度约为119.33 μA/cm2,腐蚀机制表现为均匀腐蚀.相比于干摩擦,材料本身较好的耐蚀性能协同提高了材料在模拟体液环境下耐磨性能,同时配合模拟体液带来的润滑作用,材料的磨损率得到显著降低.此时,磨损机制以腐蚀磨损为主并伴有轻微的磨粒磨损.

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    For biomedical magnesium alloys, Mg-Zn-Ca ternary alloys were prepared by Zn and Ca elements microalloying and high extrusion ratio deformation. The microstructure of the materials was characterized by metallographic analysis and scanning electron microscopy. According to the application scenario, the corrosion resistance of the alloy was evaluated by the combination of conventional electrochemical test and micro-electrochemical test in human simulated body fluid (SBF). At the same time, the sliding wear property of the material was analyzed by friction and wear test. The results show that the alloy microstructure is the single-phase solid solution by microalloying and hot extrusion. The grain size of the alloy is relatively uniform, the corrosion current density is about 119.33 μA/cm2, and the corrosion mechanism is uniform corrosion. Compared with dry friction, the better corrosion resistance of the material itself co-improves the wear resistance of the material in the simulated body fluid environment. At the same time, the wear rate of the material is significantly reduced with the lubrication effect brought by the simulated body fluid. At this time, the wear mechanism is mainly corrosion wear accompanied by slight abrasive wear.

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XU Shiwei?,HU Nan, TENG Jie, HU Jingzhou, NIU Yunfe. SBF下镁锌钙合金耐蚀性能和耐磨性能研究[J].湖南大学学报:自然科学版,2023,(12):138~146

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  • 在线发布日期: 2024-01-02
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