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Improvement of the mechanical and oxidation resistance of pyrolytic carbon coatings by co-deposition synthesis of pyrolytic carbon-silicon carbide nanocomposite

机译:通过共沉积合成热解碳 - 碳化碳纳米复合材料改善热解碳涂层机械和抗氧化抗性

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In this work, pyrolytic carbon- silicon carbide (PyC-SiC) nanocomposites were prepared via pyrolysis of Trimethylsilyl chloride (TMSCl) as precursor using chemical vapor deposition method at high temperature (1100 degrees C). The nanocomposite of PyC-SiC was synthesized by the deposition of SiC and PyC components from the stream of nitrogen as carrier gas by the co-deposition method. The effect of substrate type and TMSCl concentration on microstructure, composition, thermal properties, and mechanical behavior were investigated. The formation of PyC-SiC nanocomposites was followed by Raman spectroscopy, Fourier transform infrared spectroscopy and X-ray diffraction. Scanning electron microscopy was used to study of nanocomposite morphology. Additionally, the amount and distribution of Si element in the PyC-SiC nanocomposites was determined by energy dispersive X-ray mapping. The results showed that the nanocomposite containing higher SiC content was synthesized by TMSCl at 2.5 vol% on graphite. Furthermore, the results of thermogravimetric analysis and wear resistance (via tribometer) showed that the oxidation and wear resistance of nanocomposites increased with an increase in the amount of embedded silicon in the nanocomposites. Oxidation temperature and wear resistance of prepared nanocomposites in comparison with PyC increased to about 100 QC and 300%, respectively. The tribology results showed that the friction coefficient of nanocomposites increases about 25-300% with increasing TMSCl concentration. Finally, the results of the nanoindentation test showed that increasing the amount of SiC embedded in nanocomposites improved the elastic modulus and hardness of nanocomposites about 180% and 100%, respectively.
机译:在这项工作中,通过在高温下(1100℃)的化学气相沉积方法,通过将三甲基甲硅烷基氯化物(TMSCl)热解制备热解碳 - 碳化硅(Pyc-SiC)纳米复合材料。通过共沉积方法将SiC和Pyc组分从氮气流沉积来合成Pyc-SiC的纳米复合材料。研究了基材类型和TMSC1浓度对微观结构,组成,热性能和机械行为的影响。 Pyc-SiC纳米复合材料的形成之后是拉曼光谱,傅里叶变换红外光谱和X射线衍射。扫描电子显微镜用于研究纳米复合材料形态。另外,通过能量分散X射线测绘测定Pyc-SiC纳米复合材料中Si元素的量和分布。结果表明,纳米复合材料通过TMSCL在石墨上以2.5体积%合成了较高的SiC含量。此外,热重分析和耐磨性(通过摩擦计)的结果表明,纳米复合材料的氧化和耐磨性随纳米复合材料中的嵌入式硅量的增加而增加。与PYC相比,制备纳米复合材料的氧化温度和耐磨性分别增加到约100qc和300%。摩擦学结果表明,纳米复合材料的摩擦系数随着TMSCL浓度的增加而增加约25-300%。最后,纳米茚满试验的结果表明,增加纳米复合材料中的SiC的量提高了纳米复合材料的弹性模量和硬度,分别为约180%和100%。

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