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Elaboration and mechanical characterization of multi-phase alumina-based ultra-fine composites

机译:多相氧化铝基超细复合材料的制备和力学性能

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摘要

Al _2O _3-10 vol.% YAG and Al _2O _3-10 vol.% ZrO _2 bi-phase composites as well as Al _2O _3-5 vol.% YAG-5 vol.% ZrO _2 tri-phase composite were developed by controlled surface modification of an alumina powder with inorganic precursors of the second phases. Green bodies were produced by dry pressing and slip casting and then sintered at 1500 °C. In particular, slip casting led to fully dense, defect-free, and highly homogenous samples, made of a fine dispersion of the second phases into the micronic alumina matrix, as observed by SEM. The mechanical characterization proved the predominant role of the final density on the Vickers hardness, while the elastic modulus was affected by the volume fraction of the constituent phases, in fairly good agreement with the rule of mixture prediction. The fracture toughness values of the bi- and tri-phase materials were similar, and their crack paths revealed the importance of the thermal residual stresses at the matrix-reinforcement interfaces, promoting inter-granular propagations.
机译:通过开发了Al _2O _3-10体积%YAG和Al _2O _3-10体积%ZrO _2双相复合材料以及Al _2O _3-5体积%YAG-5体积%ZrO _2三相复合材料用第二相的无机前体控制氧化铝粉末的表面改性。通过干压和粉浆铸造生产生坯,然后在1500°C下烧结。尤其是,如通过SEM观察到的,滑模浇铸导致完全致密,无缺陷且高度均质的样品,该样品由第二相在微粉氧化铝基质中的精细分散制成。力学表征证明了最终密度对维氏硬度的主要作用,而弹性模量则受组成相的体积分数的影响,与混合物的预测规则相当吻合。双相和三相材料的断裂韧度值相似,并且它们的裂纹路径揭示了基体-增强界面处的热残余应力的重要性,从而促进了晶间扩展。

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