首页> 外文期刊>Journal of inorganic and organometallic polymers and materials >Super-Thermite (Al/Fe_2O_3) Fluorocarbon Nanocomposite with Stimulated Infrared Thermal Signature via Extended Primary Combustion Zones for Effective Countermeasures of Infrared Seekers
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Super-Thermite (Al/Fe_2O_3) Fluorocarbon Nanocomposite with Stimulated Infrared Thermal Signature via Extended Primary Combustion Zones for Effective Countermeasures of Infrared Seekers

机译:通过扩展的主燃烧区具有受激红外热信号的超级铝热(Al / Fe_2O_3)氟碳纳米复合材料,有效地解决了红外搜索者的问题

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摘要

Super-thermites can offer large amount of energy up to 16736J/g. Flares based on super-thermites can offer superior thermal signature to countermeasure infrared (IR) guided missile seekers. This study reports on the sustainable fabrication of mono-dispersed Fe2O3 nanoparticles of 3nm average particle size. Colloidal Fe2O3 nanoparticles were harvested from their synthesis medium and re-dispersed in acetone. Fluorocarbon polymers (teflon and viton) as well as aluminum metal fuel were integrated into Fe2O3/acetone colloid. The colloid mixture was granulated and mold pressed to develop the desired grain. The impact of Fe2O3 nanoparticles on thermal signature was assessed using (FT-MIR 1-6 mu m) spectrometer. Flame propagation was investigated by video imaging of combustion wave. Combustion zones were quantified using image analysis. Quantification of flame temperature and main IR emitting species was performed using ICT thermodynamic code (virgin 2008). Nanocomposite flare with 12wt% Fe2O3 offered an increase in the intensity of band by 230% to that of reference formulation. The primary reaction zone was extended by 164%. Super-thermite particles not only offered superior spectral performance but also altered the combustion mechanism.
机译:超级热剂可以提供高达16736J / g的大量能量。基于超级热量的火炬可以提供出色的热信号,以对抗红外(IR)制导的导弹导引头。这项研究报告了可持续制造平均粒径为3nm的单分散Fe2O3纳米颗粒。从其合成介质中收获胶体状的Fe2O3纳米颗粒,然后将其重新分散在丙酮中。氟碳聚合物(聚四氟乙烯和氟橡胶)以及铝金属燃料被整合到Fe2O3 /丙酮胶体中。将胶体混合物制粒并压模以形成所需的颗粒。使用(FT-MIR 1-6μm)光谱仪评估了Fe2O3纳米颗粒对热信号的影响。通过燃烧波的视频成像研究了火焰的传播。使用图像分析来量化燃烧区域。使用ICT热力学代码(原始2008年)对火焰温度和主要的IR发射物质进行定量。与参考配方相比,含有12wt%Fe2O3的纳米复合材料火炬的带强度增加了230%。主要反应区扩大了164%。超热粒子不仅提供了出色的光谱性能,而且改变了燃烧机理。

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