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首页> 外文期刊>Materials transactions >Preparation and Mechanical Properties of Alumina-Zirconia Composites with Agglomerated Structures Using Pre-Sintered Powder
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Preparation and Mechanical Properties of Alumina-Zirconia Composites with Agglomerated Structures Using Pre-Sintered Powder

机译:预烧结粉末团聚结构氧化铝-氧化锆复合材料的制备及力学性能

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It is known that thermal residual stress in particulate ceramics results from the mismatch of thermal expansion coefficients of particulates and matrix and contributes to toughening of ceramic composites. In this study, alumina-zirconia composites with agglomerated structures were prepared using alumina or alumina-zirconia powder to obtain large-sized compressive zones in particulate ceramics without degrading flexural strength. Agglomerated powder was obtained by pre-sintering. Then several samples used different fraction and size of agglomerated powder were prepared by pressureless sintering. Microstructure and crack paths of prepared samples were examined by scanning electron microscopy (SEM); flexural strength and fracture toughness of samples were evaluated by four-point flexural test and controlled surface flow method, respectively. Alumina-rich agglomerated structures and a zirconia-rich matrix were formed in samples that were produced using pre-sintered powder. Addition of zirconia to pre-sintered alumina powder prevented coarsening of alumina grains in agglomerated structures. Grain coarsening and cracking caused the decrease in flexural strength of samples with agglomerated structures. Agglomerated structures enhanced fracture toughness. In particular, a specimen using 21.1 vol percent of pre-sintered alumina-rich powder of 32 to 150 (mu)m exhibited increase in fracture toughness by approximately 30 percent without sacrificing average flexural strength. A SEM observation of crack paths showed that grain bridging did not occur in samples. Thereby, we inferred that the compressive residual stress zone in agglomerated structures played an important role in raising fracture toughness.
机译:众所周知,颗粒陶瓷中的热残余应力是由颗粒和基体的热膨胀系数不匹配引起的,并有助于陶瓷复合材料的增韧。在这项研究中,使用氧化铝或氧化铝-氧化锆粉末制备具有结块结构的氧化铝-氧化锆复合材料,以获得颗粒陶瓷中的大型压缩区,而不会降低挠曲强度。通过预烧结获得附聚的粉末。然后通过无压烧结制备了使用不同级分和尺寸的附聚粉末的几个样品。通过扫描电子显微镜(SEM)检查了所制备样品的显微组织和裂纹路径;分别通过四点弯曲试验和受控表面流动法评估样品的弯曲强度和断裂韧性。在使用预烧结粉末生产的样品中形成了富含氧化铝的团聚结构和富含氧化锆的基体。在预烧结的氧化铝粉末中添加氧化锆可防止凝聚结构中的氧化铝晶粒粗化。晶粒的粗化和开裂导致附聚结构样品的抗弯强度降低。团聚结构增强了断裂韧性。特别地,使用21.1体积%的32至150μm的预烧结的富含氧化铝的粉末的样品显示出断裂韧性提高了约30%,而没有牺牲平均弯曲强度。 SEM对裂纹路径的观察表明,样品中未发生晶粒桥接。因此,我们推断,团聚结构中的压缩残余应力区在提高断裂韧性方面起着重要作用。

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