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Effect of Dimensions and Agglomerations of Carbon Nanotubes on Synchronous Enhancement of Mechanical and Damping Properties of Epoxy Nanocomposites

机译:碳纳米管尺寸与附聚对环氧纳米复合材料机械和阻尼性能同步增强的影响

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摘要

In order to achieve simultaneous enhancement of mechanical and damping properties, epoxy resin nanocomposites reinforced with a series of carboxylic multi-walled carbon nanotubes (C-MWCNTs) with different dimensions were prepared. A solution-based high-speed shear dispersion method was developed. The dispersion mechanism of carbon nanotubes was studied, and the degree of dispersion difficulty of carbon nanotubes with different dimensions was evaluated by theoretical calculation, and the minimum size of agglomerates for dispersion based on the mechanism of rupture was deduced. Then, the effect of synchronous enhancement on the mechanical and damping properties was tested by experiment. The effects of dimensions and agglomerations on the tensile properties, damping properties, and glass transition temperature (Tg) of the nanocomposites were investigated. The ranking of dispersion difficulty was verified using the deviations between predicted and experimental tensile modulus. The experimental results showed that the effects of synchronous enhancement on the mechanical properties and damping capacity of two kinds of specimens were remarkable and the only drawback was that their Tg showed the maximum decrease. Further studies indicated that C-MWCNTs with large aspect ratios and large specific surface areas possessed better effects on synchronous enhancement, but caused a decrease in the glass transition temperature, while agglomeration had the opposite effect. The results of this work would be helpful for preparing improved structural damping integrated composites.
机译:为了实现机械和阻尼性能的同时增强,制备用具有不同尺寸的一系列羧基多壁碳纳米管(C-MWCNT)加强的环氧树脂纳米复合材料。开发了一种基于溶液的高速剪切分散方法。研究了碳纳米管的分散机制,通过理论计算评价了具有不同尺寸的碳纳米管的分散难度,并推导出基于破裂机制的分散体的最小尺寸。然后,通过实验测试了同步增强对机械和阻尼性能的影响。研究了尺寸和附聚对纳米复合材料的拉伸性能,阻尼性能和玻璃化转变温度(Tg)的影响。使用预测和实验拉伸模量之间的偏差来验证分散难度的排序。实验结果表明,两种样本的同步增强对机械性能和阻尼能力的影响显着,唯一的缺点是它们的TG显示最大降低。进一步的研究表明,具有大的纵横比和大的比表面积的C-MWNTs对同步增强具有更好的影响,但导致玻璃化转变温度的降低,而附聚具有相反的效果。这项工作的结果将有助于准备改进的结构阻尼集成复合材料。

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