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Study on the Aging Mechanism of Boron Potassium Nitrate (BKNO3) for Sustainable Efficiency in Pyrotechnic Mechanical Devices

机译:硝酸硼钾(BKNO3)烟火机械设备可持续效率的老化机理研究

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摘要

The aging of propellants in PMDs is considered to be one of the primary factors affecting the performance of PMDs. Thus, studies on the aging mechanism of propellants, which have not yet been addressed extensively, pose a solution to securing the sustainable operation of PMDs. We characterized one of the most commonly used commercial propellants (boron potassium nitrate (BKNO3)) and investigated its aging mechanism rigorously. Based on thermal analyses, we demonstrate that the decomposition of laminac, a polymer binder, is the fastest spontaneous reaction. However, it will not self-initiate at a storage temperature as high as 120 °C. The effect of the humidity level was examined by characterizing BKNO3 samples prepared. The heat of reaction and the reaction rate decreased by 18% and 67% over 16 weeks of aging, respectively. This is attributed to the oxide shells on the surface of boron particles. The formation of oxide shells could be confirmed using X-ray photoelectron spectroscopy and transmission electron microscopy–energy dispersive spectroscopy. In conclusion, surface oxide formation with the aging of BKNO3 will decrease its propulsive efficiency; oxidation reduces the potential energy of the system and the resulting oxide decreases the reaction rate.
机译:PMD中推进剂的老化被认为是影响PMD性能的主要因素之一。因此,关于推进剂老化机理的研究尚未得到广泛解决,这为确保PMD的可持续运行提供了解决方案。我们表征了最常用的商业推进剂之一(硝酸硼钾(BKNO3)),并严格研究了其老化机理。基于热分析,我们证明层状聚合物粘合剂的分解是最快的自发反应。但是,它在高达120 C的存储温度下不会自启动。通过表征制备的BKNO3样品来检验湿度水平的影响。在老化的16周内,反应热和反应速率分别降低了18%和67%。这归因于硼颗粒表面的氧化物壳。可以使用X射线光电子能谱和透射电子显微镜–能量色散谱来确认氧化物壳的形成。总之,随着BKNO3的老化,表面氧化物的形成将降低其推进效率。氧化会降低系统的势能,而生成的氧化物会降低反应速率。

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