Alexander G. Korotkikh , Daniil V. Teplov , Ivan V. Sorokin
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It was found that the high reactivity of dispersed Al reduces the ignition time and increases the burning rate of HECs, and increases the volume fraction of fine condensed particles. The use of amorphous B or Al-B mixture (17.2/82.8 mass ratio) increases the ignition time (up to 62%) and significantly reduces the burning rate of HECs, at the same time, the volume share of large CCPs increases due to the melting of the oxide layer on the surface of B particles and their increased cohesion. Analysis of CCPs showed that fine and large agglomerate particles were formed on the surface of the reactive HEC layer, which contain oxides of the metals used. 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It was found that the high reactivity of dispersed Al reduces the ignition time and increases the burning rate of HECs, and increases the volume fraction of fine condensed particles. The use of amorphous B or Al-B mixture (17.2/82.8 mass ratio) increases the ignition time (up to 62%) and significantly reduces the burning rate of HECs, at the same time, the volume share of large CCPs increases due to the melting of the oxide layer on the surface of B particles and their increased cohesion. Analysis of CCPs showed that fine and large agglomerate particles were formed on the surface of the reactive HEC layer, which contain oxides of the metals used. 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引用次数: 0
摘要
分散金属在氧化环境中的燃烧具有实际意义,这与预测含有金属粉末的高能成分(HECs)的特性以及各种推进系统和气体发生器的特性有关。该研究对高能量成分热分解和燃烧过程中形成的气体产物中铝、B 和铝-B 混合物分散体系的点火和燃烧特性进行了研究。在研究点火和燃烧特征、火焰过程的发展时,应用了连续二氧化碳激光器(高速辐射加热)和连续压力流炸弹(固定燃烧),包括捕获冷凝燃烧产物(CCPs)的过滤系统。研究发现,分散铝的高反应性缩短了 HECs 的点火时间,提高了燃烧速率,并增加了细小冷凝颗粒的体积分数。使用无定形 B 或 Al-B 混合物(质量比为 17.2/82.8)可延长点火时间(最长可达 62%)并显著降低 HECs 的燃烧速率,同时,由于 B 颗粒表面氧化层的熔化及其内聚力的增加,大的 CCP 体积份额也会增加。对 CCP 的分析表明,在活性 HEC 层表面形成了细小和较大的团聚颗粒,其中含有所用金属的氧化物。当 Al 粒子与 B 粒子一起燃烧时,会形成复合氧化物(硼酸铝)。
Combustion features of dispersed aluminum and boron in high-energy composition
Combustion of dispersed metals in an oxidizing environment is of practical interest, which is related to the prediction of characteristics of high-energy compositions (HECs) containing metal powders, as well as the characteristics of various propulsion systems and gas generators. The research studies peculiarities of ignition and combustion of dispersed systems of Al, B and Al-B mixture in gas products formed during thermal decomposition and combustion of HEC components. In the study of the characteristics of ignition and combustion, the development of flame processes, a continuous CO2 laser (high-speed radiant heating) and a continuous-pressure flow bomb (stationary combustion), including the filter system for the capture of condensed combustion products (CCPs) were applied. It was found that the high reactivity of dispersed Al reduces the ignition time and increases the burning rate of HECs, and increases the volume fraction of fine condensed particles. The use of amorphous B or Al-B mixture (17.2/82.8 mass ratio) increases the ignition time (up to 62%) and significantly reduces the burning rate of HECs, at the same time, the volume share of large CCPs increases due to the melting of the oxide layer on the surface of B particles and their increased cohesion. Analysis of CCPs showed that fine and large agglomerate particles were formed on the surface of the reactive HEC layer, which contain oxides of the metals used. When Al particles are burned together with B particles, complex oxides (aluminum borates) can be formed.