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An alternative approach to improve burning rate characteristics and processing parameters of composite propellant

机译:一种改善复合推进剂燃烧速率特性和加工参数的替代方法

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Modification in burn rate of composite solid propellant has become a necessity of a mission. Burn rate can be modified by various mean viz. (i) tailoring the ammonium perchlorate (AP) particle size, (ii) use of nano-sized particles and (iii) incorporating burn rate modifiers. Literature discusses about various burn rate modifiers. Out of these, Iron oxide (Fe2O3)/IO is the well known burn rate enhancer. Here a systematic study was carried out by undertaking experiments at varying levels of IO in composite propellant compositions. This paper attempts to understand the effect of IO content and its specific surface area on burn rate characteristics of composite propellant. This study also attempts to find out alternative to ultrafine AP and nano burn rate enhancer to account for high burning rate of composite propellant along with reduced slurry viscosity and longer pot life for easy processing. As ultrafine AP and nano burn rate enhancers have their limitations in terms of (i) high end of mix (EOM) propellant slurry viscosity, (ii) difficulty in propellant processing, (iii) less reproducibility in attaining the similar particle size in each batch results in lesser repeatability in ballistic properties of propellant, (iv) hazards involved in size reduction, (v) limitations in handling, storage and shelf life and also (vi) the higher cost of nano particles. Therefore an extensive experimental study was performed to achieve this objective. In this study, we incorporated two different grades of IO(A) and IO (B) in composite propellant compositions. The average particle size of both grades of IO i.e., A and B are of similar to 1 mu m. But the specific surface area of IO (B) was about 15 times more than IO (A). The large difference in specific surface area of both IO was due to difference in the manufacturing process. During the manufacturing of IO, the calcination temperature plays very important role in deciding the specific surface area. High specific surface area is obtained if calcination is done at very high temperature (>1773 K). Burning rate measurements were carried out. It was observed that IO is a good burn rate enhancer. Initially, the burn rate increased with the increase in % of IO. But after that only a marginal enhancement in burn rate was observed. It was noticed that though both grades of IO are effective burn rate enhancer but IO(B) was 30% more effective than IO(A). Also it was found that IO(B) is an alternative to ultrafine AP and nano burn rate modifiers. This IO(B) was further used to develop the propellant compositions with high burn rate without incorporating ultrafine AP and nano particles. Viscosity measurement and mechanical properties determination revealed that both the IOs did not much adversely alter the processing characteristics and mechanical properties of propellant. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:改变复合固体推进剂的燃烧速率已成为一项任务的必要。燃烧率可以通过各种均值来修改。 (i)调整高氯酸铵(AP)的粒度,(ii)使用纳米级的颗粒,以及(iii)掺入燃烧速率改性剂。文献讨论了各种燃烧速率调节剂。其中,氧化铁(Fe2O3)/ IO是众所周知的燃烧速率增强剂。在这里,通过在复合推进剂组合物中不同IO水平下进行实验,进行了系统的研究。本文试图了解IO含量及其比表面积对复合推进剂燃烧速率特性的影响。这项研究还试图找到超细AP和纳米燃烧速率增强剂的替代品,以解决复合推进剂的高燃烧速率,降低浆液粘度和延长适用期的问题,从而易于加工。由于超细AP和纳米燃烧速率增强剂的局限性在于(i)混合料(EOM)推进剂浆液粘度高,(ii)推进剂加工困难,(iii)在每批中获得相似粒径的重现性较低导致推进剂弹道性能的重复性较低,(iv)减小尺寸所涉及的危险,(v)操纵,储存和保质期方面的限制,以及(vi)纳米粒子的成本较高。因此,进行了广泛的实验研究以实现该目的。在这项研究中,我们在复合推进剂组合物中掺入了两种不同等级的IO(A)和IO(B)。 IO的两个等级的平均粒度,即A和B,类似于1μm。但是IO(B)的比表面积大约是IO(A)的15倍。两种IO的比表面积差异很大是由于制造工艺的差异。在IO的制造过程中,煅烧温度在确定比表面积方面起着非常重要的作用。如果在非常高的温度(> 1773 K)下进行煅烧,则可获得较高的比表面积。进行燃烧率测量。据观察,IO是良好的燃烧速率增强剂。最初,刻录率随着IO%的增加而增加。但是在那之后,仅观察到燃烧速率的轻微提高。值得注意的是,尽管两种等级的IO都是有效的燃烧速率增强剂,但IO(B)的效果比IO(A)高30%。还发现IO(B)是超细AP和纳米燃烧速率改性剂的替代品。该IO(B)进一步用于开发高燃烧速率的推进剂组合物,而没有掺入超细AP和纳米颗粒。粘度测量和机械性能测定表明,两个IO并没有很大程度地改变推进剂的加工特性和机械性能。 (C)2019燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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