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Mechanical properties, aging behavior and microstructure evolution of Mg-Nd-Zn-Zr based magnesium matrix composite reinforced with alumina fibers

机译:氧化铝纤维增强Mg-Nd-Zn-Zr基镁基复合材料的力学性能,时效行为和组织演变

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Metal matrix composites reinforced with discontinuous reinforcement (short fiber, whisker or particle) are attractive for applications requiring higher stiffness and strength than traditional alloys. Unlike continuously reinforced composites, where the properties are mainly influenced by fibers, the properties of the discontinuously reinforced composites seem to be influenced more by matrix properties. Most of the discontinuously reinforced composites are based on age-hardenable light alloys, so that aging treatments can be applied to develop the optimum properties of the composites. The aging behavior of discontinuously reinforced composites has been a subject of great interest both from scientific and technological view points. Recently developed NZ30K (Mg-3wt.%Nd-0.5wt.%Zn-0.5wt.%Zr) alloys exhibit higher specific strength at both room and elevated temperatures, better strength and creep resistance than the existing commercial magnesium alloys. Accordingly, this alloy can be considered as a candidate material for potential automobile applications, such as engine blocks and pistons, which experience high service temperature. Its use could save considerable mass weight in powertrain systems. However, low elastic modulus and wear resistance of magnesium alloys limit their widespread applications. Metal matrix composites have been proposed as the feasible and economical solution. The aim of this study is to investigate the effect of alumina fibers on the aging hardening kinetics and age-hardening efficiency of squeeze cast NZ30K/Saffil/15p magnesium matrix composite. The aging behavior has been examined using Vickers, combined with microstructure observation developed during heat treatment by optical microscopy, scanning electron microscopy (SEM) and transmission electron microscopy (TEM).
机译:用不连续增强材料(短纤维,晶须或颗粒)增强的金属基复合材料对于要求比传统合金更高的刚度和强度的应用具有吸引力。与连续增强复合材料的性能主要受纤维影响不同,不连续增强复合材料的性能似乎受基质性能的影响更大。大多数不连续增强的复合材料都是基于可时效硬化的轻合金,因此可以采用时效处理来开发复合材料的最佳性能。从科学和技术的观点来看,不连续增强的复合材料的老化性能都引起了人们的极大关注。最近开发的NZ30K(Mg-3wt。%Nd-0.5wt。%Zn-0.5wt。%Zr)合金在室温和高温下均显示出更高的比强度,比现有的商用镁合金具有更高的强度和抗蠕变性。因此,这种合金可以被认为是潜在的汽车应用的候选材料,例如潜在的汽车应用,例如发动机缸体和活塞,它们的工作温度很高。它的使用可以节省动力总成系统中的大量重量。但是,镁合金的低弹性模量和耐磨性限制了它们的广泛应用。已经提出金属基复合材料作为可行且经济的解决方案。这项研究的目的是研究氧化铝纤维对挤压铸造的NZ30K / Saffil / 15p镁基复合材料的时效硬化动力学和时效效率的影响。已使用维氏(Vickers)检查了老化行为,并结合了在热处理过程中通过光学显微镜,扫描电子显微镜(SEM)和透射电子显微镜(TEM)观察到的微观结构观察结果。

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