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The Enhancement of Mg Corrosion Resistance by Alloying Mn and Laser-Melting

机译:锰合金化和激光熔炼提高镁的耐蚀性

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摘要

Mg has been considered a promising biomaterial for bone implants. However, the poor corrosion resistance has become its main undesirable property. In this study, both alloying Mn and laser-melting were applied to enhance the Mg corrosion resistance. The corrosion resistance, mechanical properties, and microstructure of rapid laser-melted Mg-xMn (x = 0–3 wt %) alloys were investigated. The alloys were composed of dendrite grains, and the grains size decreased with increasing Mn. Moreover, Mn could dissolve and induce the crystal lattice distortion of the Mg matrix during the solidification process. Mn ranging from 0–2 wt % dissolved completely due to rapid laser solidification. As Mn contents further increased up to 3 wt %, a small amount of Mn was left undissolved. The compressive strength of Mg-Mn alloys increased first (up to 2 wt %) and then decreased with increasing Mn, while the hardness increased continuously. The refinement of grains and the increase in corrosion potential both made contributions to the enhancement of Mg corrosion resistance.
机译:镁被认为是用于骨植入物的有前途的生物材料。但是,耐腐蚀性差已成为其主要的不良特性。在这项研究中,合金化的Mn和激光熔炼都可以提高Mg的耐腐蚀性。研究了快速激光熔化的Mg-xMn(x = 0-3 wt%)合金的耐蚀性,力学性能和显微组织。合金由枝晶晶粒组成,晶粒尺寸随着Mn的增加而减小。此外,在凝固过程中,Mn会溶解并引起Mg基体的晶格畸变。由于激光快速凝固,Mn含量在0–2 wt%范围内完全溶解。随着Mn含量进一步增加至3wt%,少量的Mn不溶解。 Mg-Mn合金的抗压强度先增加(最高2 wt%),然后随着Mn的增加而降低,而硬度则不断提高。晶粒的细化和腐蚀电位的增加都为增强镁的耐蚀性做出了贡献。

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