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Online Structural-Health Monitoring of Glass Fiber-Reinforced Thermoplastics Using Different Carbon Allotropes in the Interphase

机译:在相间使用不同碳同素异形体的玻璃纤维增​​强热塑性塑料的在线结构健康监测

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摘要

An electromechanical response behavior is realized by nanostructuring the glass fiber interphase with different highly electrically conductive carbon allotropes like carbon nanotubes (CNT), graphene nanoplatelets (GNP), or conductive carbon black (CB). The operational capability of these multifunctional glass fibers for an online structural-health monitoring is demonstrated in endless glass fiber-reinforced polypropylene. The electromechanical response behavior, during a static or dynamic three-point bending test of various carbon modifications, shows qualitative differences in the signal quality and sensitivity due to the different aspect ratios of the nanoparticles and the associated electrically conductive network densities in the interphase. Depending on the embedding position within the glass fiber-reinforced composite compression, shear and tension loadings of the fibers can be distinguished by different characteristics of the corresponding electrical signal. The occurrence of irreversible signal changes during the dynamic loading can be attributed to filler reorientation processes caused by polymer creeping or by destruction of electrically conductive paths by cracks in the glass fiber interphase.
机译:通过用不同的高导电碳同素异形体,如碳纳米管(CNT),石墨烯纳米片(GNP)或导电碳黑(CB)纳米结构化玻璃纤维中间相,可以实现机电响应行为。这些多功能玻璃纤维用于在线结构健康监测的操作能力已在无尽的玻璃纤维增​​强聚丙烯中得到证明。在各种碳修饰的静态或动态三点弯曲测试期间,机电响应行为显示出信号质量和灵敏度的定性差异,这归因于纳米粒子的长宽比和相间相关的导电网络密度不同。取决于玻璃纤维增​​强复合材料内的嵌入位置,可以通过相应电信号的不同特性来区分纤维的剪切载荷和拉伸载荷。动态加载过程中不可逆信号变化的发生可归因于填料重新定向过程,该过程由聚合物蠕变或玻璃纤维中间相中的裂纹破坏了导电路径而引起。

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