Ab'/> Formation of zirconia wear resistant composites via decomposition of unstable solid solutions in nanopowders – An aspects and advantages of the technology
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Formation of zirconia wear resistant composites via decomposition of unstable solid solutions in nanopowders – An aspects and advantages of the technology

机译:氧化锆耐磨复合材料通过纳米孔中不稳定固体溶液的分解 - 技术的一个方面和优点

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AbstractThe present study is devoted to the problem of structure formation in zirconia ceramic matrix composites. In this paper we have analyzed the general features and distinguish behavior standard mixing and co-precipitation technology to obtain composite zirconia nanopowders. We appreciate the opportunity of co-precipitation technique for its application in the semi industrial production of zirconia powders for ceramic products with wide range of application: structural, wear-resistant, functional etc. It was shown that co-precipitation technique matches for synthesis of zirconia based composite nanopowders with predetermined chemical, phase and granulometric characteristics. It was shown that the mechanical characteristics and durability of zirconia based composites sintered from these nanopowders increase in comparison with materials obtained by standard technology. The formation of unstable solid solutions during synthesis of nanopowders and its controlled decomposition during sintering are the basic distinguish feature of co-precipitation method. These processes lead to the formation of different type of inclusions and changes in phase, chemical and granulometric compositions in matrix material as well as rearrangement of residual stresses fields occurs in composite material.Highlights?Nanopowders were prepared by co-precipitation and standard mixing technique.?Supersaturated solid solutions are formed in nanopowders, obtained by co-precipitation.?The mechanical properties of ZrO2-based composites depend from obtaining method and temperature of firing.?The decomposition of solid solutions during sintering lead to formation of the complex composite structures.]]>
机译:<![cdata [ 抽象 本研究致力于氧化锆陶瓷基复合材料的结构形成问题。在本文中,我们分析了一般特征和区分行为标准混合和共沉淀技术,得到复合氧化锆纳米粉末。我们欣赏其在氧化锆粉末的AS Semi Industrial生产中适用于陶瓷产品的共同降水技术的机会,具有广泛的应用:结构,耐磨,功能等。结果表明合成的共析出技术匹配基于氧化锆的复合纳米粉末,具有预定的化学,相和粒度特性。结果表明,氧化锆基复合材料的机械特性和耐久性与通过标准技术获得的材料相比增加。在纳米粉末合成期间形成不稳定的固溶体及其在烧结期间的受控分解是共沉淀法的基本区分特征。这些方法导致形成不同类型的夹杂物,以及基质材料中的相,化学和粒状组合物的变化以及残留应力田的重排发生在复合材料中。 亮点 纳米粉末通过共沉淀和标准混合技术制备。 < / ce:list-item> 超饱和固体解决方案通过共沉淀获得的纳米粉刺。 zro 2 基于的复合材料取决于获得方法和射击的温度。 在烧结过程中固体溶液的分解导致复合复合结构的形成。 ]]>

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