基于分散碳纳米管传感网络压阻特性的固体火箭推进剂结构健康监测

N. Shirodkar, S. Rocker, G. Seidel
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引用次数: 1

摘要

自嵌入式纳米复合材料问世以来,原位结构健康监测日益受到人们的关注。本实验研究了在聚合物粘合剂中嵌入均匀分散但随机取向的碳纳米管(CNT)传感网络的聚合物键合能量学的结构健康监测能力。最近固体推进剂的常见配方由高氯酸铵(氧化剂)和铝粉(可燃燃料)组成,通常使用聚合物粘合剂定型,而不是使用旧的动力压制技术。由于本研究的重点是材料的结构健康,而不是其热性能,因此使用单斜糖晶体作为高氯酸铵的替代品,因为它具有非常相似的机械性能,并且在材料处理方面更安全。因此,通过聚二甲基硅氧烷(PDMS)粘合剂结合的糖晶体和铝粉的组合以不同的浓度被制造出来以模拟实际的固体火箭推进剂。本研究的主要重点在于通过将碳纳米管嵌入含能材料置于机械载荷下来表征其机械和电气性能;其次,详细观察和研究了拉伸和压缩作用下的实时机电响应。将碳纳米管添加到聚合物粘合剂中,从而转化为一种实时传感技术,用于检测聚合物键合过程中的多尺度损伤。本研究的结果旨在建立碳纳米管嵌入式结构健康监测系统的概念验证。
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Structural Health Monitoring of Solid Rocket Propellants Using Piezoresistive Properties of Dispersed Carbon Nano-Tube Sensing Networks
There has been increasing focus in the area of in-situ structural health monitoring since the advent of embedded nano-composites. This experimental research investigates the structural health monitoring abilities of polymer bonded energetics embedded with a uniformly dispersed but randomly oriented carbon nanotube (CNT) sensing network within the polymer binder. A common formulation of the recent solid propellants consists of ammonium perchlorate (oxidizer) and aluminum powder (combustive fuel)-often shaped using a polymer binder, rather than the older techniques of power pressing. Since this study focuses on the structural health of the material and not its thermal properties, monoclinic sugar crystals were used as a substitute for ammonium perchlorate as it has very similar mechanical properties and is much safer in terms of material handling. Thus, a combination of sugar crystals and aluminum powder bound by a Polydimethylsiloxane (PDMS) binder is fabricated in varying concentrations to simulate actual solid rocket propellants. The main focus of this study lies in characterizing the mechanical and electrical properties of the CNT embedded energetic material through subjecting it under mechanical loads; followed by a detailed observation and study of the real time electro-mechanical response under tension and compression. The addition of carbon nanotubes to the polymer binder, thus translates to a real time sensing technique for detection of multi-scale damage in polymer bonded energetics. The results of this study aim to establish a proof of concept for CNT embedded structural health monitoring systems.
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