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The effect of type of mechanical processing on electrical conductivity and piezoresistive response of CNT and graphite composites

机译:机械加工类型对CNT和石墨复合材料电导率和压阻响应的影响

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Nanocomposite materials are attracting significant interest as matrices for conventional composite materials, where their increased electrical conductivity present the possibility of multi-functional properties, such as embedded heating and electromagnetic shielding. One problem facing the increased use of the nanocomposites is their rapid and efficient production. Three different mixing methods: 3-roll mill, shear mixing and hand mixing were tested to mix carbon nanotubes (CNTs) and graphite into epoxy resin. The electrical conductivity and piezoresistive response of the resulting nanocomposites were measured and compared to the relative rate of nanocomposite could be produced. Maximisation of the functional properties is important, but speed of throughput is also essential, thus enabling larger and production ready components to take advantage of the additional functionality. Because of health and safety concerns during material handling of nanoparticles, this study employed a premixed CNT masterbatch (Arkema) and graphite powders (Superior Graphite), as these do not require specialised health and safety equipment to process, making industrial application more viable. It was found that the 3-roll provided the largest increase in conductivity out of the three mixing methods, and hand mixing and shear mixing performed similarly. Piezoresistivity was seen in all modified samples, however gauge factors were difficult to determine due to underdeveloped sample contact and preparation methods.
机译:纳米复合材料作为常规复合材料的基质吸引了显着的兴趣,其中它们增加的电导率存在多功能性质的可能性,例如嵌入式加热和电磁屏蔽。增加纳米复合材料的使用面临的一个问题是它们的快速高效。三种不同的混合方法:测试3辊磨机,剪切混合和手混合,将碳纳米管(CNT)和石墨混合到环氧树脂中。测量所得纳米复合材料的电导率和压阻响应,并与纳米复合材料的相对速率进行比较。功能性质的最大化是重要的,但吞吐量的速度也是必不可少的,因此能够利用额外的功能来实现更大和生产的准备组件。由于纳米粒子的物质处理期间的健康和安全问题,本研究采用预混合的CNT母料(Arkema)和石墨粉末(高级石墨),因为这些不需要专门的健康和安全设备来处理,使工业应用更加可行。发现3辊提供了三种混合方法中的导电性的最大增加,并且手动混合和剪切混合类似地进行。在所有修饰的样品中看到压阻性,但由于欠发达的样品接触和制备方法,难以确定仪表因子。

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