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Improved stress corrosion cracking resistance of a novel biodegradable EW62 magnesium alloy by rapid solidification, in simulated electrolytes

机译:通过在模拟电解质中快速凝固提高新型可生物降解的EW62镁合金的抗应力腐蚀开裂性

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The high corrosion rate of magnesium (Mg) and Mg-alloys precludes their widespread acceptance as implantable biomaterials. Here, we investigated the potential for rapid solidification (RS) to increase the stress corrosion cracking (SCC) resistance of a novel Mg alloy, Mg-6%Nd-2%Y-0.5%Zr (EW62), in comparison to its conventionally cast (CC) counterpart. RS ribbons were extrusion consolidated in order to generate bioimplant-relevant geometries for testing and practical use. Microstructural characteristics were examined by SEM. Corrosion rates were calculated based upon hydrogen evolution during immersion testing. The surface layer of the tested alloys was analyzed by X-ray photoelectron spectroscopy (XPS). Stress corrosion resistance was assessed by slow strain rate testing and fractography. The results indicate that the corrosion resistance of the RS alloy is significantly improved relative to the CC alloy due to a supersaturated Nd enrichment that increases the Nd_2O_3 content in the external oxide layer, as well as a more homogeneous structure and reduced grain size. These improvements contributed to the reduced formation of hydrogen gas and hydrogen embrittlement, which reduced the SCC sensitivity relative to the CC alloy. Therefore, EW62 in the form of a rapidly solidified extruded structure may serve as a biodegradable implant for biomedical applications.
机译:镁(Mg)和镁合金的高腐蚀速率阻止了它们作为可植入生物材料的广泛接受。在这里,我们研究了快速凝固(RS)的潜力,以提高新型Mg合金Mg-6%Nd-2%Y-0.5%Zr(EW62)的耐应力腐蚀开裂(SCC)能力,与传统方法相比演员(CC)。 RS色带经过挤压加固,以生成与生物植入物相关的几何形状,以进行测试和实际使用。通过SEM检查微观结构特征。腐蚀速率是根据浸入测试期间的析氢计算得出的。通过X射线光电子能谱(XPS)分析了被测合金的表面层。耐应力腐蚀性能通过慢应变速率测试和分形法进行评估。结果表明,由于过饱和的Nd富集增加了外部氧化物层中Nd_2O_3的含量,并且结构更加均匀,晶粒尺寸减小,RS合金的耐腐蚀性相对于CC合金得到了显着提高。这些改进有助于减少氢气的形成和氢脆,从而相对于CC合金降低了SCC敏感性。因此,快速固化的挤压结构形式的EW62可用作生物医学应用的可生物降解植入物。

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