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MECHANICAL PROPERTIES OF STEEL ENCAPSULATED METAL MATRIX COMPOSITES

机译:钢包封的金属基复合材料的力学性能

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摘要

This research evaluates a coefficient of thermal expansion (CTE) mismatch induced residual compressive stress approach as a means of improving the ductility of metal matrix composites (MMCs). MMCs are frequently incorporated into advanced material systems due to their tailorable material properties. However, they often have insufficient strength and ductility for many structural applications. By combining MMCs with high strength steels in a hybridized, macro composite materials system that exploits the CTE mismatch, materials systems with improved strength, damage tolerance, and structural efficiency can be obtained. Macro hybridized systems consisting of steel encapsulated light metal MMCs were produced with the goal of creating a system which takes advantage of the high strength, modulus, and damage tolerance of steels and high specific stiffness and low density of MMCs while mitigating the high density of steels and the poor ductility of MMCs. Aluminum and magnesium based particulate reinforced MMCs combine many of the desirable characteristic of metals and ceramics, particularly the unique ability to tailor their CTE. This work aims to compare the performance of macro hybridized material systems consisting of aluminum or magnesium MMCs reinforced with Al_2O_3, SiC, or B_4C particles and encapsulated by A36 steel, 304 stainless steel, or cold worked Nitronic® 50 stainless steels.
机译:这项研究评估了热膨胀系数(CTE)不匹配引起的残余压应力方法,作为提高金属基复合材料(MMCs)延展性的一种手段。 MMC由于其可定制的材料特性,经常被合并到高级材料系统中。但是,对于许多结构应用来说,它们通常没有足够的强度和延展性。通过在利用CTE不匹配的混合宏复合材料系统中将MMC与高强度钢结合,可以获得具有改进的强度,损伤容限和结构效率的材料系统。产生了由钢包封的轻金属MMC组成的宏观混合系统,其目的是创建一种系统,该系统利用钢的高强度,模量和损伤容限以及MMC的高比刚度和低密度,同时减轻钢的高密度和MMC的延展性差。铝和镁基颗粒增强MMC结合了金属和陶瓷的许多理想特性,特别是定制其CTE的独特能力。这项工作旨在比较由Al_2O_3,SiC或B_4C颗粒增强并由A36钢,304不锈钢或冷加工Nitronic®50不锈钢封装的铝或镁MMC组成的宏观混合材料系统的性能。

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