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Real Time In-Situ Sensing of Damage Evolution in Carbon Nanotube-Polymer Nanocomposite Bonded Surrogate Energetics

机译:碳纳米管-聚合物纳米复合键合替代能量学中损伤演化的实时原位传感

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The current work aims to explore the potential for in-situ structural health monitoring in polymer bonded energetic materials through the introduction of carbon nanotubes (CNTs) into the binder phase as a means to establish a significant piezoresistive response through the resulting nanocomposite binder. The experimental effort herein is focused towards electro-mechanical characterization of surrogate materials in place of actual energetic (explosive) materials in order to provide proof of concept for the strain and damage sensing. The electrical conductivity and the piezoresistive behavior of samples containing randomly oriented, well dispersed MWNTs at concentrations of 0.09-0.6 wt% introduced into the epoxy binder of 70 wt% granulated sugar-epoxy hybrid composites are quantitatively and qualitatively evaluated. Ductile failure behavior going through the initial linear elastic behavior, formation of microcracks leading to reduction in composite stiffness and finally macrocracks result in eventual failure were observed in the mechanical response of MWNT-sugar-epoxy hybrid composites. The real time in-situ relative change in resistance captured the effect of microcracks and macrocracks earlier than the stress strain response resulting in gauge factors between 5-10 before significant macrocrack formation and over 50 at composite failure.
机译:当前的工作旨在探索通过将碳纳米管(CNT)引入到粘结剂相中来在聚合物粘结的高能材料中进行原位结构健康监测的潜力,以此作为通过所得的纳米复合粘结剂建立显着的压阻响应的手段。本文的实验工作集中于替代实际高能(爆炸)材料的替代材料的机电特性,以提供应变和损伤感测的概念证明。定量和定性地评估了样品的电导率和压阻行为,该样品包含浓度为0.09-0.6 wt%的随机定向的,分散良好的MWNT,该浓度为70 wt%的颗粒状糖-环氧杂化复合材料的环氧粘合剂。在MWNT-糖-环氧杂化复合材料的机械响应中观察到韧性破坏行为经历了初始的线性弹性行为,形成了微裂纹,导致复合材料刚度降低,最后宏观裂纹导致了最终的破坏。电阻的实时原位相对变化比应力应变响应更早地捕获了微裂纹和大裂纹的影响,从而导致显着大裂纹形成前的应变系数介于5-10之间,而复合材料破坏时的应变系数大于50。

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