首页> 外文会议>Testing and evaluation of inorganic materials I. >Microstructure Transformation and Mechanical Properties of the Large-bulk Solidified Al2O3-ZrO2 (Y2O3) Micro-nanocrystalline Composites Prepared by Combustion Synthesis under High Gravity
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Microstructure Transformation and Mechanical Properties of the Large-bulk Solidified Al2O3-ZrO2 (Y2O3) Micro-nanocrystalline Composites Prepared by Combustion Synthesis under High Gravity

机译:高重力燃烧合成大块固态Al2O3-ZrO2(Y2O3)微纳米晶复合材料的组织转变和力学性能

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Based on preparing the large-bulk solidified Al2O3ZrO2 (Y2O3) ceramic composites by combustion synthesis under high gravity,the solidification behavior and microstructure transformation of the ceramics as well as their effects on the ceramic properties were investigated. XRD. SEM and EDS analyses showed the ceramic microstructures were composed of the irregular eutectics at the surface and the tetragonal ZrO2 micrometer spherical crystals in the center of the ceramics respectively. By combining with irreversible nucleation theory,it is considered that the formation of irregular eutectics with micro-nanocrystalline microstructures is a result of the leading nucleation of Al2O3 high-fusion-entropy phases followed by the coupled growth of Al2O3-ZrO2 phases,whereas the presence of the tetragonal ZrO2 spherical microstructures in the center of the ceramics results from the leading nucleation of ZrO2 cubic phases followed by the independent growth of Al2O3-ZrO2 phases. As a result, it is just the unique microstructure transformation during the solidification process that the highest hardness at the surface and the highest fracture toughness in the center of the ceramics are achieved respectively.
机译:在高重力下通过燃烧合成制备大块固化的Al2O3ZrO2(Y2O3)陶瓷复合材料的基础上,研究了陶瓷的凝固行为,微观结构转变及其对陶瓷性能的影响。 XRD。 SEM和EDS分析表明,陶瓷的微观结构分别由表面不规则的共晶和陶瓷中心的四方ZrO2微米球形晶体组成。结合不可逆成核理论,认为具有微纳米晶微结构的不规则共晶的形成是Al2O3高熔融熵相先导成核,随后Al2O3-ZrO2相耦合生长的结果。陶瓷中心的四角形ZrO2球形微结构的产生是由于ZrO2立方相的先导成核,然后是Al2O3-ZrO2相的独立生长。结果,仅在凝固过程中独特的微观结构转变就分别实现了陶瓷表面的最高硬度和陶瓷中心的最高断裂韧性。

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