首页> 外文期刊>Thermochimica Acta: An International Journal Concerned with the Broader Aspects of Thermochemistry and Its Applications to Chemical Problems >Thermal degradation behavior of hydrogenated nitrile-butadiene rubber (HNBR)/clay nanocomposite and HNBR/clay/carbon nanotubes nanocomposites
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Thermal degradation behavior of hydrogenated nitrile-butadiene rubber (HNBR)/clay nanocomposite and HNBR/clay/carbon nanotubes nanocomposites

机译:氢化丁腈橡胶(HNBR)/粘土纳米复合材料和HNBR /粘土/碳纳米管纳米复合材料的热降解行为

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摘要

The thermal degradation of hydrogenated nitrile-butadiene rubber (HNBR)/clay and HNBR/clay/carbon nanotubes (CNTs) nanocomposites was investigated with thermogravimetric analysis (TGA) by using Kissinger method, Flynn-Wall-Ozawa method and Friedman method. The activation energy sequence of HNBR and its nanocomposites is HNBR/clay/CNTs> HNBR/clay> HNBR. HNBR/clay/CNTs nanocomposites had higher char yield at 600__ than HNBR/clay, which was attributed to the interaction of network between clay and CNTs. The activation energies of HNBR and HNBR nanocomposites had a sharply increase in the low conversion degree area and a slow increase in the high conversion degree area. The gases involved during thermal degradation in nitrogen atmosphere were studied by Fourier transform infrared spectroscopy coupled with TGA. The HNBR/clay/CNTs nanocomposites had lower thermal degradation rate than HNBR/clay, which could be attributed to that the clay-CNTs filler network reduced the diffusion speed of degradation products. The coexistence of clay and CNTs could form compact char layers with better barrier property than clay and thus improved the thermal stability of HNBR.
机译:采用Kissinger法,Flynn-Wall-Ozawa法和Friedman法,通过热重分析(TGA)研究了氢化丁腈橡胶(HNBR)/粘土和HNBR /粘土/碳纳米管(CNTs)纳米复合材料的热降解。 HNBR及其纳米复合材料的活化能顺序为HNBR /粘土/ CNT> HNBR /粘土> HNBR。 HNBR /粘土/ CNTs纳米复合材料在600℃比HNBR /粘土具有更高的炭收率,这归因于粘土与CNTs之间的网络相互作用。 HNBR和HNBR纳米复合材料的活化能在低转化率区域急剧增加,而在高转化率区域缓慢增加。通过傅里叶变换红外光谱结合TGA研究了氮气氛中热降解过程中涉及的气体。 HNBR /粘土/ CNTs纳米复合材料的热降解速率低于HNBR /粘土,这可能是由于粘土-CNTs填料网络降低了降解产物的扩散速度。粘土和碳纳米管的共存可以形成致密的炭层,并具有比粘土更好的阻隔性能,从而提高了丁腈橡胶的热稳定性。

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