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Zirconia toughening of mullite-zirconia-zircon composites obtained by direct sintering

机译:直接烧结得到的莫来石-氧化锆-锆石复合材料的氧化锆增韧

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摘要

Although multi-phase ceramic materials were always used, nowadays composite materials have an important industrial and technological role, because they enlarge the design capability of the manufacturer in properties and behaviors. Some mullite-zirconia-zircon composites were recently processed and characterized which presented satisfactory properties for structural applications under severe chemical and thermomechanical conditions. The objective of the present work is to study the influence of the starting composition in the mechanical and fracture properties of mullite-zirconia-zircon composites, with different microstructures, obtained by direct sintering of binary mixtures of electrofused mullite-zirconia (MZ) and micronized zircon. The materials were consolidated by slip casting of concentrated aqueous suspensions in plaster molds from a wide range of powder compositions (between 15-85 wt% and 85-15 wt% of the two raw materials used). Flexural strength (sigma_f), dynamic elastic modulus (E), toughness (K_(IC)) and fracture surface energy (gamma_(NBT)) were evaluated. The results were explained by microstructure and the XRD-Rietveld analysis. At low proportion, the zircon was thermally dissociated. The ZrO_2 was a product of this reaction and also influenced the mechanical and fracture properties of these materials through several combined mechanisms, principally as a result of the development of microcracks due to the volume change of the zirconia grains caused by the martensitic transformation during the cooling of these composites from sintering temperature. Composites prepared with higher MZ in the starting powders showed a higher fracture toughness and initiation energy. Microstructure consisting of mullite as a continuous predominant phase in which zircon and zirconia grains were distributed showed better mechanical and fracture properties.
机译:尽管一直使用多相陶瓷材料,但如今复合材料在工业和技术上起着重要作用,因为它们提高了制造商在性能和性能方面的设计能力。最近加工并表征了一些莫来石-氧化锆-锆石复合材料,这些复合材料在苛刻的化学和热机械条件下具有令人满意的结构应用性能。本工作的目的是研究通过电熔莫来石-氧化锆(MZ)的二元混合物的直接烧结和微粉化获得的初始组成对具有不同微观结构的莫来石-氧化锆-锆石复合材料的力学和断裂性能的影响。锆石。通过在石膏模具中用滑模铸造浓缩的水悬浮液,从各种粉末成分(介于所用两种原料的15-85 wt%和85-15 wt%之间)中巩固材料。评价了弯曲强度(sigma_f),动弹性模量(E),韧性(K_(IC))和断裂表面能(gamma_(NBT))。通过微观结构和XRD-Rietveld分析解释了结果。在低比例下,锆石被热分解。 ZrO_2是该反应的产物,并且还通过几种组合机理影响了这些材料的机械和断裂性能,这主要是由于冷却过程中马氏体相变引起的氧化锆晶粒体积变化导致微裂纹发展的结果。这些复合材料的烧结温度。在起始粉末中以较高的MZ制备的复合材料显示出较高的断裂韧性和引发能。由莫来石作为连续的主要相组成的微结构,其中锆石和氧化锆晶粒分布在其中,具有更好的机械性能和断裂性能。

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