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Sintering of ultra-fine tetragonal yttria-stabilized zirconia ceramics

机译:氧化钇稳定的超细四方晶系氧化锆陶瓷的烧结

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摘要

High-frequency induction heated sintering (HFIHS) is utilized to consolidate ultra-fine grain tetragonal zirconia stabilized with 3 mol%Y2O3 (3Y-SZ) ceramics. Densification to near theoretical density in a relatively short time can be accomplished using this method. Samples of 3Y-SZ with a relative density of up to 99.5% and an average grain size of about 170 nm could be obtained by sintering at 950 °C for 5 min under a pressure of 100 MPa pressure. The influence of sintering temperature and mechanical pressure on the final density and grain size of the sintered products was investigated. The sintered materials had fracture toughness and hardness values of 4.4 MPa m1/2 and 10.7 GPa, respectively.
机译:高频感应加热烧结(HFIHS)用于固结3mol%的Y2 O3 (3Y-SZ)陶瓷稳定的超细晶粒四方氧化锆。使用这种方法可以在相对短的时间内将密度提高到接近理论密度。通过在950°C的压力下于100 MPa压力下烧结5分钟,可以获得3Y-SZ样品,其相对密度高达99.5%,平均晶粒尺寸约为170 nm。研究了烧结温度和机械压力对烧结产品最终密度和晶粒尺寸的影响。烧结材料的断裂韧性和硬度值分别为4.4 MPa m1 / 2 和10.7 GPa。

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  • 来源
    《Journal of Materials Science 》 |2007年第22期| 9409-9414| 共6页
  • 作者单位

    Department of Advanced Materials Engineering Research Center of Advanced Materials Development Engineering Research Institute Chonbuk National University 664-14 Duckijn-Dong Duckjin-Ku Jeonju Jeonbuk 560-756 Republic of Korea;

    Department of Advanced Materials Engineering Research Center of Advanced Materials Development Engineering Research Institute Chonbuk National University 664-14 Duckijn-Dong Duckjin-Ku Jeonju Jeonbuk 560-756 Republic of Korea;

    Department of Advanced Materials Engineering Research Center of Advanced Materials Development Engineering Research Institute Chonbuk National University 664-14 Duckijn-Dong Duckjin-Ku Jeonju Jeonbuk 560-756 Republic of Korea;

    Department of Advanced Materials Engineering Research Center of Advanced Materials Development Engineering Research Institute Chonbuk National University 664-14 Duckijn-Dong Duckjin-Ku Jeonju Jeonbuk 560-756 Republic of Korea;

    Facility for Advanced Combustion Synthesis Department of Chemical Engineering and Materials Science University of California Davis CA 95616 USA;

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