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Ignition and combustion of high-energy materials containing aluminum, boron and aluminum diboride

机译:含铝,硼和二硼化铝的高能材料的点火和燃烧

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Boron and its compounds are among the most promising metal fuel components to be used in solid propellants for solid fuel rocket engine and ramjet engine. Papers studying boron oxidation mostly focus on two areas: oxidation of single particles and powders of boron, as well as boron-containing composite solid propellants. This paper presents the results of an experimental study of the ignition and combustion of the high-energy material samples based on ammonium perchlorate, ammonium nitrate, and an energetic combustible binder. Powders of aluminum, amorphous boron and aluminum diboride, obtained by the SHS method, were used as the metallic fuels. It was found that the use of aluminum diboride in the solid propellant composition makes it possible to reduce the ignition delay time by 1.7–2.2 times and significantly increase the burning rate of the sample (by 4.8 times) as compared to the solid propellant containing aluminum powder. The use of amorphous boron in the solid propellant composition leads to a decrease in the ignition delay time of the sample by a factor of 2.2–2.8 due to high chemical activity and a difference in the oxidation mechanism of boron particles. The burning rate of this sample does not increase significantly.
机译:硼及其化合物是用于固体燃料火箭发动机和冲压发动机的固体推进剂中最有希望的金属燃料组分之一。研究硼氧化的论文主要集中在两个领域:硼的单颗粒和粉末的氧化,以及含硼的复合固体推进剂。本文介绍了基于高氯酸铵,硝酸铵和高能可燃粘合剂的高能材料样品着火和燃烧的实验研究结果。通过SHS方法获得的铝,无定形硼和二硼化铝的粉末用作金属燃料。研究发现,与含铝固体推进剂相比,在固体推进剂组合物中使用二硼化铝可以将点火延迟时间减少1.7-2.2倍,并显着提高样品的燃烧速率(4.8倍)。粉末。由于高化学活性和硼颗粒氧化机理的差异,在固体推进剂组合物中使用无定形硼会导致样品的点火延迟时间减少2.2-2.8倍。该样品的燃烧速率没有明显增加。

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