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Properties of magnesium alloys reinforced with nanoparticles and carbon nanotubes: A review

机译:纳米颗粒和碳纳米管增强镁合金的性能研究进展

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摘要

Magnesium alloys suffer from only moderate high-temperature strength and creep resistance. Aluminium-free magnesium alloys for sand casting or alloys containing aluminium with expensive additional alloying elements may be in use, but only microparticle or microfibre-reinforced magnesium alloys really exhibit satisfactory creep strengths at temperatures up to 250 °C. Reinforcing magnesium alloys with ceramic nanoparticles could be a solution for preserving a low density while increasing the high-temperature performance. When produced using melting processes, nanoparticle-reinforced magnesium composites are expected to enjoy strengthening due to the grain refinement described in the Hall-Petch relation. When an isotropic distribution of nanoparticles is achieved, the composites are additionally expected to be Orowan-strengthened. In this review, a variety of ceramic materials, such as SiC, Al_2O _3, Y_2O_3, SiO_2 and carbon nanotubes were investigated for reinforcement. Pure magnesium and various magnesium alloys were chosen as the matrix material and both powder metallurgical (PM) and melting processes were used for production of the composites. The mechanical properties of the composites were generally enhanced, compared to an unreinforced alloy; not only at room temperature, but also at elevated temperatures. In some cases an increase in strength in combination with increased ductility was also identified.
机译:镁合金仅具有中等的高温强度和抗蠕变性。可以使用用于铸造砂的无铝镁合金或含有铝和昂贵的其他合金元素的合金,但是只有微粒或微纤维增强的镁合金才能在高达250°C的温度下真正表现出令人满意的蠕变强度。用陶瓷纳米粒子增强镁合金可能是在保持低密度的同时提高高温性能的解决方案。当使用熔融工艺生产时,由于霍尔-佩奇关系中所述的晶粒细化,纳米颗粒增强的镁复合材料有望获得增强。当实现纳米颗粒的各向同性分布时,还期望复合材料具有Orowan增强的性能。本文对SiC,Al_2O_3,Y_2O_3,SiO_2和碳纳米管等多种陶瓷材料进行了增强研究。选择纯镁和各种镁合金作为基体材料,粉末冶金(PM)和熔融工艺均用于生产复合材料。与未增强的合金相比,复合材料的机械性能通常得到了增强。不仅在室温下,而且在高温下。在某些情况下,还可以确定强度的增加以及延展性的增加。

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