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首页> 外文期刊>Advances in Aerospace Science and Technology >Studies on the Internal Ballistics of Composite Solid Rocket Propellants Incorporating Nano-Structured Catalysts
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Studies on the Internal Ballistics of Composite Solid Rocket Propellants Incorporating Nano-Structured Catalysts

机译:纳米结构催化剂复合固体火箭推进剂内部弹道学的研究

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style="text-align:justify;"> This paper deals with the analysis of burn rate using various catalysts of Iron Oxide and determining which gives the higher burn rate with low pressure variation. The Ammonium Perchlorate (AP) was obtained and ground into fine powder with the particle size ranging from 63 to 125 μm. The propellant strands were prepared with proportions by mixing AP with the binder (Hydroxyl Terminated Polybutadiene), the catalyst (Iron Oxide), curing agent (Isophorone diisocyanate) and the plasticizer (Dioctyladipate). The prepared propellant mixture was cured at around 63 deg C to get various propellant strands. The first strand was prepared with the absence of a catalyst to set an initial base of comparison with other Iron Oxide catalysts, namely, Flower Shaped, Micro and Nano, based on the size of the particles. The combustion process was carried out in a strand burner, which was in turn connected to a data acquisition system. The obtained output was analysed in the form of graphs. The burn rate was achieved by calculating the slope of the graph i.e . by calculating the difference between the highest and the lowest peak of the graph and dividing the total time by the answer. The experiment was repeated with the different catalyst types, as mentioned above, at different pressures. It was observed that the Nano shaped Iron Oxide exhibits better burning characteristics when compared to the rest with the pressure index of 0.792. In this paper, the various experiments carried out along with their procedures are explained in detail. The results obtained and the techniques used are also elaborately described in this paper.
机译:style =“text-align:证明;”>本文涉及使用氧化铁各种催化剂的烧伤率分析,并确定具有低压变化的较高燃烧速率。得到高氯酸铵(AP)并研磨成细粉末,粒度范围为63至125μm。通过将AP与粘合剂(羟基封端的聚丁二烯),催化剂(氧化铁),固化剂(异佛酮二异氰酸酯)和增塑剂(DioctylAdipate)混合,用比例制备推进剂股线。制备的推进剂混合物在约63℃下固化以获得各种推进剂股线。在没有催化剂的情况下,制备第一链以将与其他氧化铁催化剂的比较,即花状,微纳米基于颗粒的尺寸来制备第一股。燃烧过程在股线燃烧器中进行,其又连接到数据采集系统。以图形的形式分析所获得的输出。通过计算图I的斜率来实现燃烧速率。通过计算图表的最高峰值和最低峰之间的差异,并通过答案除以总时间。如上所述,用不同的催化剂类型重复该实验,在不同的压力下。观察到,与静止的压力指数相比,纳米形氧化铁氧化物在0.792的压力指数相比时表现出更好的燃烧特性。在本文中,详细解释了与其程序一起进行的各种实验。在本文中也可以精确地描述所获得的结果和使用的技术。

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