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Enhancing the Corrosion Resistance Performance of Mg-1.8Zn-1.74Gd-0.5Y-0.4Zr Biomaterial via Solution Treatment Process

机译:通过固溶处理工艺增强Mg-1.8Zn-1.74Gd-0.5Y-0.4Zr生物材料的耐腐蚀性能

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摘要

Microstructure and corrosion behavior of the solution-treated Mg-1.8Zn-1.74Gd-0.5Y-0.4Zr (wt%) alloy were studied. The results of microstructure indicated that the second phases of as-cast alloy was mainly comprised of Mg Zn(Gd,Y) phase, Mg Zn (Gd,Y) phase and (Mg,Zn) (Gd,Y) phase. After solution treatment process, the second phase gradually dissolved into the matrix, and the grain size increased. The effect of microgalvanic corrosion between α-Mg matrix and second phase was also improved. At the range of 470~510 °C solution treatment temperature, the corrosion resistance of the samples increases at first and then decreases slightly at 510 °C. All the solution-treated Mg-Zn-Gd-Y-Zr samples exhibit better corrosion resistance in comparison with as-cast sample. The existence form of the remaining phase affects the morphology of the corroded surface that relatively complete dissolution with homogeneous microstructure makes the sample more effective to obtain uniform corrosion form. The optimum temperature for solution treatment is 490 °C, which shows a much better corrosion resistance and uniform corrosion form after soaking for a long time.
机译:研究了固溶处理的Mg-1.8Zn-1.74Gd-0.5Y-0.4Zr(wt%)合金的组织和腐蚀行为。显微组织结果表明,铸态合金的第二相主要由Mg Zn(Gd,Y)相,Mg Zn(Gd,Y)相和(Mg,Zn)(Gd,Y)相组成。经过固溶处理后,第二相逐渐溶入基体中,晶粒尺寸增大。 α-Mg基质与第二相之间的微电流腐蚀作用也得到了改善。在470〜510°C固溶处理温度范围内,样品的耐蚀性首先增加,然后在510°C时略有下降。与铸态样品相比,所有经溶液处理的Mg-Zn-Gd-Y-Zr样品均显示出更好的耐腐蚀性。剩余相的存在形式会影响腐蚀表面的形貌,以相对均匀的溶解和均匀的微观结构使样品更有效地获得均匀的腐蚀形式。固溶处理的最佳温度是490°C,长时间浸泡后显示出更好的耐腐蚀性和均匀的腐蚀形式。

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