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首页> 外文期刊>Journal of Materials Science >Superior ductility in magnesium alloy-based nanocomposites: the crucial role of texture induced by nanoparticles
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Superior ductility in magnesium alloy-based nanocomposites: the crucial role of texture induced by nanoparticles

机译:基于镁合金的纳米复合材料的较高延性:纳米颗粒诱导的质地的关键作用

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摘要

In an expansive field of metals, magnesium has been trending of late in automobile, aerospace, defense, sports, electronic and biomedical sectors as it offers an advantage in lightweighting. In the realm of Mg-based materials, Mg nanocomposites have a good combination of specific strength, thermal and damping properties, but lack a high ductility and do not typically undergo a large amount of uniform elongation. The current work bridges this gap by reporting a magnesium nanocomposite (Mg-1.8Y/1.5Y(2)O(3)) that exhibits a significantly high tensile ductility of 36%. Microstructural characterization of the nanocomposite revealed that the striking presence of micron-Mg-Y phases and nano-Y2O3 particles in matrix led to a bimodal particle distribution which affected the dynamic recrystallization mechanism. It was also observed that the addition of Y2O3 nanoparticles weakened the texture of nanocomposite. The dominating influence of texture weakening over other mechanisms (grain refinement and alleviated micro-strain) on the plastic deformation/ductility of the nanocomposite is highlighted, and the contribution of nanoparticles toward the enhancement of ductility is ascertained. In contrast to the previous studies where Mg-based nanocomposites are known to have improved strengths, this approach can be used to develop magnesium nanocomposites that are exceptional.
机译:在一个宽敞的金属领域,镁在汽车,航空航天,防御,运动,电子和生物医学领域的趋势一直是在轻质上提供的优势。在基于Mg基材料的领域中,Mg纳米复合材料具有特异性强度,热和阻尼性能的良好组合,但缺乏高延展性,并且通常不经历大量的均匀伸长率。通过报告镁纳米复合材料(Mg-1.8Y / 1.5Y(2)O(3)),该间隙桥接该间隙,其表现出显着高的拉伸延性为36%。纳米复合材料的微观结构表征显示微米-mg-y相和基质中的纳米y203颗粒的撞击存在导致对抗影响动态再结晶机制的双峰颗粒分布。还观察到,添加Y2O3纳米颗粒的添加削弱了纳米复合材料的质地。突出显示纹理弱化在其他机制(晶粒细化和缓解微株)上削弱纳米复合材料的塑性变形/延展性的主导影响,确定纳米颗粒朝向延展性提高的贡献。与已知基于Mg的纳米复合材料具有改进的强度的先前研究相反,这种方法可用于开发出不同的镁纳米复合材料。

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