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首页> 外文期刊>CERAMICS INTERNATIONAL >Microstructure and mechanical properties of alumina 5 vol% zirconia nanocomposites prepared by powder coating and powder mixing routes
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Microstructure and mechanical properties of alumina 5 vol% zirconia nanocomposites prepared by powder coating and powder mixing routes

机译:通过粉末涂料和粉末混合路线制备的5vol%氧化铝氧化锆纳米复合材料的微观结构和力学性能

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摘要

Zirconia toughened alumina (ZTA) nanocomposites are attractive structural materials which combine the high hardness and Young's modulus of the alumina matrix with an additional toughening effect by the zirconia dispersion.In this study two approaches to prepare ZTA are compared. For the first approach, an ultrafine alumina powder was coated with 5 vol% zirconia by a wet chemical method. For the second one, the reference material was prepared by intensively mixing and milling the same alumina with nanoscale zirconia powder. Samples were consolidated at 1350-1600 °C by hot pressing and their mechanical properties, microstructure and transformation behavior were compared. Toughness increments derived from different toughening mechanisms are also briefly discussed. Besides better sinterability, the mixed material exhibited a finer grain size of both matrix and dispersion and thus higher hardness and strength. The alumina matrix was under compressive hydrostatic residual cooling stress, whereas zirconia was under tensile one. The coated material, however, showed higher transformability, deeper transformation zones and thus higher fracture toughness. In addition, it contained more monoclinic zirconia so the matrix was under tension.
机译:氧化锆增韧氧化铝(ZTA)纳米复合材料是有吸引力的结构材料,结合了氧化铝基体的高硬度和杨氏模量以及氧化锆分散体的附加增韧效果。在本研究中,比较了两种制备ZTA的方法。对于第一种方法,通过湿化学方法将超细氧化铝粉末涂上5%(体积)的氧化锆。对于第二种,参考材料是通过将相同的氧化铝与纳米级氧化锆粉末充分混合并研磨而制备的。通过热压在1350-1600°C下固结样品,并比较其机械性能,微观结构和转变行为。还简要讨论了源自不同增韧机制的韧度增量。除了具有更好的可烧结性外,混合材料还具有更细的基体和分散体晶粒尺寸,因此具有更高的硬度和强度。氧化铝基体处于压缩静水残余冷却应力下,而氧化锆处于抗拉残余应力下。然而,涂覆的材料显示出更高的可变形性,更深的转变区并因此具有更高的断裂韧性。此外,它含有更多的单斜晶氧化锆,因此基体处于拉伸状态。

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