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    微量Ca对Mg-4Ce-2Zn合金组织和性能的影响

    Effects of Trace Ca on Microstructure and Properties of Mg-4Ce-2Zn Alloy

    • 摘要: 采用X射线衍射仪(XRD)、扫描电镜(SEM)、电子背散射衍射(EBSD)、纳米压痕仪、维氏硬度计、电化学极化测试等观察并研究了微量Ca元素(质量分数0.43%)对挤压后Mg-4Ce-2Zn合金组织和性能的影响。结果表明:微量Ca的添加协同挤压变形工艺,使Mg-4Ce-2Zn合金晶粒细化,并析出Ca2Mg6Zn3第二相,合金的力学性能和耐蚀性得到提升,其维氏硬度、纳米硬度和弹性模量分别提高了约12.0%、9.98%和29.17%,腐蚀电流密度从1.000 μA·cm-2下降至0.015μA·cm-2;Mg-4Ce-2Zn合金力学性能的提高,可归因于细晶强化、第二相析出强化和固溶强化;耐蚀性提升的原因是微量Ca元素在腐蚀过程中促进致密腐蚀钝化膜的形成,同时细化的晶粒使得腐蚀钝化膜与基底结合,合金的腐蚀模式发生转变,从非均匀腐蚀变为均匀腐蚀。

       

      Abstract: The influence of trace Ca element (mass fraction 0.43%) on the microstructure and properties of Mg-4Ce-2Zn alloy after extrusion was observed and studied using X-ray diffraction (XRD), scanning electron microscopy (SEM), electron backscatter diffraction (EBSD), nanoindentation apparatus, Vickers hardness tester, electrochemical polarization test, etc. The results show that with the addition of trace amounts of Ca cooperated with extrusion deformation process refined the grain size of Mg-4Ce-2Zn alloy, and precipitated a second phase of Ca2Mg6Zn3. The mechanical properties and corrosion resistance of the alloy had been improved, with Vickers hardness, nanohardness, and elastic modulus increasing by about 12.0%, 9.98%, and 29.17%, respectively. The corrosion current density had decreased from 1.000 μA·cm-2 to 0.015 μA·cm-2. The improvement of mechanical properties of Mg-4Ce-2Zn alloy could be attributed to fine grain strengthening, second phase precipitation strengthening, and solid solution strengthening. The reason for the improvement of corrosion resistance is that trace Ca elements promoted the formation of a dense corrosion passivation film during the corrosion process, and the refined grains could enable the corrosion passivation film to bond with the substrate. The corrosion mode of the alloy changed from non-uniform corrosion to uniform corrosion.

       

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