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Application of Piezoresistive Nanocomposite Binders for Real Time Embedded Sensing of Strain and Damage in Energetic Materials

机译:压渗纳米复合材料粘合剂的应用实时嵌入式感应菌株的菌株及损伤能量材料

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In-situ structural health monitoring in polymer bonded energetic materials through the introduction of carbon nanotubes into the binder phase is investigated through piezoresistive response under quasi-static and low velocity impact loading in order to provide the basis for deformation and damage sensing for real-time self-diagnostic functionalities in energetic materials. The experimental effort herein is focused on mock energetics using 70 wt% ammonium perchlorate (AP) and 70 wt% sugar crystals embedded into epoxy binder having concentrations of 0.1 and 0.5 wt% MWCNTs relative to the entire hybrids. Electrical conductivity, mechanical properties and piezoresistive sensitivities of mock energetics are quantitatively and qualitatively evaluated. Electrical conductivity was improved ~3 and ~5 orders of magnitude for 0.1 and 0.5 wt% MWCNTs mock energetics from that of the baseline neat mock energetics. Incorporating MWCNTs into local binder improved tensile modulus of AP mock and sugar mock energetics, ~15% and ~70% respectively, and tensile strength of mock sugar mock energetics ~40% compared to neat mock energetics. Significant piezoresistive response was obtained both for MWCNT AP mock and MWCNT sugar mock energetics, which may be the first experimental study in the literature demonstrating the electro-mechanical characterization of inert mock energetic materials which provides proof of concept for strain and damage sensing under quasi-static and low velocity impact loading for real time structural health monitoring in energetics.
机译:原位结构健康通过引入碳纳米管的成粘结相在聚合物键合的高能材料监测通过压阻响应下准静态和低速冲击载荷,以便提供用于变形和损坏感测用于实时的基础研究自诊断功能中的高能材料。本文的实验工作的重点是使用70%(重量)过氯酸铵(AP)嵌入到环氧树脂粘合剂相对于整个杂种0.1和0.5%(重量)多壁碳纳米管的浓度的具有模拟和能量学70重量%的糖晶体。的导电性,机械性能和模拟能量学的压阻灵敏度定量和定性评估。电导率提高幅度〜3个〜5订单0.1和0.5%(重量)多壁碳纳米管从基线整齐模拟能量学的模拟能量学。多壁碳纳米管掺入到局部粘合剂改善分别AP模拟和糖模拟能量学拉伸模量,〜15%和〜70%,和模拟糖模拟能量学〜40%的拉伸强度相比,整齐模拟能量学。得到显著压阻响应都为MWCNT AP模拟和MWCNT糖模拟能量学,其可以是在文献中展示的惰性模拟高能材料的电 - 机械特性,其下准提供概念用于应变和损坏传感证明第一实验研究静态和低速冲击载荷在热力学实时结构健康监测。

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