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Fire Retardancy and Morphology of Nylon 6-clay Nanocomposite Compositions

机译:尼龙6-粘土纳米复合材料组合物的阻燃和形态

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We investigated the effect of organically modified clay on the thermal and flammability behavior of nylon 6 nanocomposites. We also used zinc borate along with layered silicate with an aim of achieving synergistic effect in flame retardancy. It is found that addition of 10 wt% clay reduced the onset decomposition (5% wt loss) temperature of nylon 6 by 20°C, while addition of 5 wt% zinc borate and 5 wt% clay in combination reduced it by around 10°C. Differential thermogravimetric analysis indicated that the peak decomposition temperature was not affected by the addition of clay, but the rate of weight loss decreased with increasing clay concentration. The horizontal burning behavior of the nanocomposite films of approximately 0.5mm thickness changed with additive concentration. The nanocomposites with 2.5 wt% and 5 wt% clay burned for almost the same duration as neat nylon 6 but dripping was reduced. The 10 wt% clay nanocomposite sample burned without any dripping and the flame spread rate was reduced by 25-30%. The burn rate of 5 wt % zinc borate/5 wt% clay nanocomposite sample was about 20% higher than that of 10 wt% clay nanocomposite sample, which could be attributed to varying char morphology. Scanning electron microscopy images of the 10wt% clay nanocomposite char surface and cross- section revealed an integrated layer of clay platelets with increasing density gradient from the center to the surface, while the 5 wt% zinc borate/5 wt% clay nanocomposite char appeared foamy and porous. The 5 wt% zinc borate and 5 wt% clay sample developed into a very good intumescent system in cone calorimeter test, swelling about 10-13mm height prior to ignition forming a cellular char structure. This was as effective as the 10wt% clay nanocomposite sample in reducing the heat release and mass loss rate of nylon 6 by around 65%. Fourier transform infrared spectroscopy of the 10 wt% clay nanocomposite char showed the presence of amides, indicating possible residual polymer within the shielded char.
机译:我们研究了有机改性粘土对尼龙6纳米复合材料的热性和可燃性行为的影响。我们还使用锌硼酸锌以及层状硅酸盐,目的是在阻燃性中实现协同作用。发现10wt%粘土的加入降低了尼龙6的发病分解(5%wt损耗)温度20℃,同时加入5wt%硼酸锌和5wt%粘土,组合将其减少约10° C。差分热重分析表明,峰分解温度不受粘土的增加影响,但随着粘土浓度的增加而降低了重量损失率。纳米复合膜的水平燃烧行为约为0.5mm厚的厚度随添加剂浓度而变化。具有2.5wt%和5wt%粘土的纳米复合材料几乎与整齐的尼龙6相同的持续时间,但滴落降低。在没有任何滴水的情况下燃烧的10wt%粘土纳米复合样品和火焰展开率降低25-30%。 5wt%锌硼酸锌/ 5wt%粘土纳米复合样品的燃烧率高于10wt%粘土纳米复合样品的20%高约20%,这可能归因于不同的炭质形态。扫描电子显微镜图像的10wt%粘土纳米复合炭炭和横截面显示粘土血小板的一体化层,从中心到表面的密度梯度增加,而5wt%锌硼酸锌/ 5wt%粘土纳米复合炭出现泡沫和多孔。将5wt%锌硼酸锌和5wt%粘土样品在锥形量热仪测试中形成为非常好的膨胀系统,在点火之前膨胀约10-13mm高度,形成细胞炭结构。这与10wt%粘土纳米复合材料一样有效,以降低尼龙6的热释放和质量损失率约为65%。 10wt%粘土纳米复合炭的傅里叶变换红外光谱显示出酰胺的存在,表明屏蔽炭内可能的残余聚合物。

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