掺氟si3n4/sic复合材料界面粘性行为

G. Pezzotti , K. Ota , H.-J. Kleebe , Y. Okamoto , T. Nishida
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引用次数: 20

摘要

系统研究了氟对Si3N4/SiC复合材料晶粒/相边界结构及其高温粘滞行为的影响。作为参考,我们选择了一个简单的热等静压致密系统(HIP),在边界处只含有sio2。此外,通过在原料粉末混合过程中加入聚四氟乙烯,然后在1200℃高真空下预烧,将F掺杂剂掺入复合体中。透射电镜分析表明,氟仍然局限于晶界膜和三相点,占晶间玻璃sio2相的重量的百分之几。利用高分辨率电子显微镜(HREM)和原子力显微镜(AFM)对晶粒和相界进行了详细的结构表征。在高达1600°C的温度下,通过测量扭转蠕变速率和内摩擦变化来表征未掺杂和掺f的sio2相的高温力学行为。掺f材料的蠕变速率比未掺f材料高几个数量级,并且阻尼温度曲线明显向较低的温量值移动。根据上述的一组显微组织和力学数据,可以定量评价sio2晶间相的固有粘度,并对应力作用下的粘滑机理进行建模。
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Viscous behavior of interfaces in fluorine-doped si3n4/sic composites

The influence of fluorine addition on the grain/phase boundary structures and their viscous behavior at high temperature were systematically investigated in Si3N4/SiC composites. As a reference, a simple system densified by hot isostatic pressing (HIP) and containing only SiO2at the boundaries was selected for this basic investigation. In addition, increasing amounts of F dopant were incorporated into the composite bodies by adding Teflon during the mixing procedure of the raw powders and then pre-firing the mixture under high vacuum at 1200°C. Analytical transmission electron microscopy showed that fluorine remained localized at the grain boundary films and triple points, constituting an amount up to a few percent by weight of the intergranular glassy-SiO2phase. Detailed structural characterizations of both grain and phase boundaries were performed by using high-resolution electron microscopy (HREM) and atomic force microscopy (AFM). The high-temperature mechanical behavior of the undoped and F-doped SiO2phases was characterized by both measurements of torsional creep rate and variation of internal friction at temperatures up to 1600°C. F-doped materials showed creep rates several orders of magnitude higher compared to the undoped sample and damping temperature curves markedly shifted to lower temperature values. According to the above set of microstructural and mechanical data, the inherent viscosity of the SiO2intergranular phase could be quantitatively evaluated and the viscous-sliding mechanism under stress modeled.

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