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Electrical Response of Carbon Nanotube Reinforced Nanocomposites Under Static and Dynamic Loading

机译:碳纳米管增强纳米复合材料在静态和动态载荷下的电响应

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摘要

An experimental investigation was conducted to study the effect of quasi-static and dynamic compressive loading on the electrical response of multi-wall carbon nanotube (MWCNT) reinforced epoxy nanocomposites. An in-situ polymerization process using both a shear mixer and an ultrasonic processor were employed to fabricate the nanocomposite material. The fabrication process parameters and the optimum weight fraction of MWCNTs for generating a well-dispersed percolation network were first determined. Absolute resistance values were measured with a high-resolution four-point probe method for both quasi-static and dynamic loading. In addition to measuring the percentage change in electrical resistance, real-time damage was captured using high-speed photography. The real-time damage was correlated to both load and percentage change in resistance profiles. The experimental findings indicate that the bulk electrical resistance of the nanocomposites under both quasi-static and dynamic loading conditions initially decreased between 40%-60% during compression and then increased as damage initiated and propagated.
机译:进行了实验研究,以研究准静态和动态压缩载荷对多壁碳纳米管(MWCNT)增强的环氧纳米复合材料电响应的影响。采用使用剪切混合器和超声处理器的原位聚合方法来制造纳米复合材料。首先确定用于产生分散良好的渗滤网络的MWCNT的制备工艺参数和最佳重量分数。用高分辨率的四点探针法测量了准静态和动态负载的绝对电阻值。除了测量电阻的百分比变化外,还可以使用高速摄影来捕获实时损坏。实时损坏与负载和电阻分布的百分比变化相关。实验结果表明,在准静态和动态载荷条件下,纳米复合材料的整体电阻最初在压缩过程中降低了40%-60%,然后随着损伤的产生和扩散而增加。

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