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Investigation on Composition Mechanical Properties and Corrosion Resistance of Mg-0.5Ca-X(Sr Zr Sn) Biological Alloy

机译:Mg-0.5Ca-X(SrZrSn)生物合金的组成力学性能和耐蚀性研究

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摘要

Four nontoxic biological alloys, Mg-0.5Ca-1Sr-4Zr (Alloy 1), Mg-0.5Ca-1Sr-1.5Zr (Alloy 2), Mg-0.5Ca-3Sr-1.5Zr (Alloy 3), and Mg-0.5Ca-1Sr-0.5Sn (Alloy 4), were prepared by vacuum smelting, gravity casting, and hot rolling. The composition and microstructure of the alloys were investigated by optical microscope, X-ray fluorescence spectrometer (XRF), X-ray diffraction (XRD), scanning electron microscope (SEM), and energy dispersion spectroscopy (EDS). The mechanical properties and corrosion behaviors of the alloys in Hank's solution were studied. Results showed that a large amount of fine and uniformly distributed second-phase particles (Zr, Mg17Sr2, and CaMgSn) was observed in four alloys obtained after rolling and alloying. The segregation of Zr in alloys was observed in EDS image, and chemical analysis showed that there was macrosegregation of the elements in the alloys. Furthermore, Mg17Sr2 phases in the Mg-0.5Ca-1Sr-0.5Sn alloy homogenized the distribution of CaMgZn phases. The comprehensive mechanical properties of four newly designed rolled alloys were much higher than those of pure Mg, and the compressive strength of the alloys was more than twice as high as that of pure magnesium. The Mg-0.5Ca-1Sr-0.5Sn alloy released the least hydrogen in Hank's solution, which was lower than that of pure magnesium. Electrochemical test results in Hank's solution further showed that the Mg-0.5Ca-1Sr-0.5Sn alloy had delayed corrosion and lowest Icorr which was 25% of that of pure magnesium. Biological experiments results showed that the Mg-0.5Ca-1Sr-0.5Sn alloy had better biocompatibility and optimal potential for bone substitute material.
机译:四种无毒生物合金Mg-0.5Ca-1Sr-4Zr(合金1),Mg-0.5Ca-1Sr-1.5Zr(合金2),Mg-0.5Ca-3Sr-1.5Zr(合金3)和Mg-0.5通过真空冶炼,重力铸造和热轧制备Ca-1Sr-0.5Sn(合金4)。通过光学显微镜,X射线荧光光谱仪(XRF),X射线衍射(XRD),扫描电子显微镜(SEM)和能量色散谱(EDS)研究了合金的组成和微观结构。研究了合金在汉克溶液中的力学性能和腐蚀行为。结果表明,在轧制和合金化后得到的四种合金中,观察到大量细小且均匀分布的第二相颗粒(Zr,Mg17Sr2和CaMgSn)。在EDS图像中观察到Zr在合金中的偏析,化学分析表明合金中元素存在宏观偏析。此外,Mg-0.5Ca-1Sr-0.5Sn合金中的Mg17Sr2相使CaMgZn相的分布均匀。四种新设计的轧制合金的综合机械性能远高于纯Mg,其压缩强度是纯镁的两倍以上。 Mg-0.5Ca-1Sr-0.5Sn合金在Hank溶液中释放的氢最少,低于纯镁。在Hank溶液中的电化学测试结果进一步表明,Mg-0.5Ca-1Sr-0.5Sn合金具有延迟腐蚀和最低Icorr的优点,其最低Icorr仅为纯镁的25%。生物实验结果表明,Mg-0.5Ca-1Sr-0.5Sn合金具有更好的生物相容性,具有替代骨材料的最佳潜力。

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