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Surface Oxidation of Al_2O_3/SiC Nanocomposite: Phase Transformation and Microstructure 被引量:4

Surface Oxidation of Al_2O_3/SiC Nanocomposite: Phase Transformation and Microstructure
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摘要 The surface oxidation behavior of pressureless sintered Al2O3/SiC nanocomposite was studied from 1000 to 1400 ℃ for more than 10 h in air. Weight gain during the process of heat treatment was measured by TG analysis. Phase transformation and microstructure changes of these specimens due to oxidation were investigated with X-ray diffraction (XRD), SEM and EDX technology. Thermogravimetric analysis show that the weight gain as a result of oxidation of SiC become significant above 1200 ℃. In the range of 1000 - 1300 ℃, the SiC grits are usually coated with a layer of amorphous silica after oxidation. Above 1300 ℃, the amorphous silica reacted with alumina matrix and formed mullite or crystallized into cristobalite. The rate of oxidation depends on the formation of dense cristobalite film. Large amount of needle-like mullite and alumina crystals are formed on the surface after oxidation at 1400℃. The surface oxidation behavior of pressureless sintered Al2O3/SiC nanocomposite was studied from 1000 to 1400 ℃ for more than 10 h in air. Weight gain during the process of heat treatment was measured by TG analysis. Phase transformation and microstructure changes of these specimens due to oxidation were investigated with X-ray diffraction (XRD), SEM and EDX technology. Thermogravimetric analysis show that the weight gain as a result of oxidation of SiC become significant above 1200 ℃. In the range of 1000 - 1300 ℃, the SiC grits are usually coated with a layer of amorphous silica after oxidation. Above 1300 ℃, the amorphous silica reacted with alumina matrix and formed mullite or crystallized into cristobalite. The rate of oxidation depends on the formation of dense cristobalite film. Large amount of needle-like mullite and alumina crystals are formed on the surface after oxidation at 1400℃.
出处 《Journal of Rare Earths》 SCIE EI CAS CSCD 2005年第4期429-432,共4页 稀土学报(英文版)
基金 Project supported bythe Ministry of Science and Technology via‘863’High Technology Projects (2002AA332080)
关键词 NANOCOMPOSITES surface OXIDATION heat treatment rare earths nanocomposites surface oxidation heat treatment rare earths
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参考文献11

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同被引文献21

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  • 2矫义来,韩亚苓,王双,孙泰礼.ZrO_2粉料在Al_2O_3-SiC纳米复合陶瓷中的作用[J].沈阳工业大学学报,2005,27(4):389-392. 被引量:3
  • 3陈小伟,陈裕泽.脆性陶瓷靶高速侵彻/穿甲动力学的研究进展[J].力学进展,2006,36(1):85-102. 被引量:27
  • 4韩亚苓,矫义来,李伟,孙泰礼.Al_2O_3/SiC纳米复合陶瓷中SiC粉料的氧化现象[J].沈阳工业大学学报,2007,29(2):130-134. 被引量:2
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