首页> 外文期刊>Journal of Applied Mechanics: Transactions of the ASME >Experimental Study and Numerical Simulation of Propellant Ignition and Combustion for Cased Telescoped Ammunition in Chamber
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Experimental Study and Numerical Simulation of Propellant Ignition and Combustion for Cased Telescoped Ammunition in Chamber

机译:舱内套筒弹药推进剂燃烧的实验研究与数值模拟。

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摘要

Cased telescoped ammunition (CTA) is a kind of charge structure with projectile embedded in the cartridge case. The advantages of CTA, compared with concepts using conventional ammunition, are: (1) reduced charge/ammunition volume, (2) improved performance, and (3) enhanced power and survivabillity of armament. The projectile is placed in the control tube of the cartridge before shooting. After the primer is struck, propellant product gases, generated by the igniter charge burning in the central igniter tube, drive the projectile to move forward along the control tube, and then causing the main propellants around the igniter tube and control tube to burn. Therefore, in the process of interior ballistics, there is a motion of the projectile in the control tube before the projectile engraves the rifles, in contrast with the traditional ammunition. The consistency of this motion has an important influence on the stability of CTA interior ballistic performance. The experiments on the ignition and combustion of propellants and motion of projectile in the control tube are carried out using a high-speed video recording system in this study. The projectile velocity at the entrance of the rifle is obtained from the recorded images. A two-phase flow model of CTA is also established and simulated by using the two-phase flow method and computational fluid dynamics technology. The calculated projectile velocity is in good agreement with the experimental data. The numerical results show that the developed mathematical model gives the correct trend and can provide useful calculated parameters for the structural design of CTA components.
机译:套筒望远镜弹药(CTA)是一种装药结构,在弹壳中装有弹丸。与使用常规弹药的概念相比,CTA的优点是:(1)减少装药/弹药量;(2)改进性能;(3)增强武器的威力和生存能力。射击前将弹丸放置在弹药筒的控制管中。击打底漆后,由点火器装料产生的推进剂产物气体在中央点火器管中燃烧,带动弹丸沿着控制管向前移动,然后导致围绕着点火器管和控制管的主要推进剂燃烧。因此,与传统的弹药相比,在内部弹道过程中,在弹丸刻入步枪之前,控制管中会有弹丸运动。此动作的一致性对CTA内部弹道性能的稳定性有重要影响。本研究使用高速视频记录系统对推进剂的点火和燃烧以及控制管中的弹丸运动进行了实验。从记录的图像中获得步枪入口处的弹丸速度。利用两相流方法和计算流体力学技术,建立并模拟了CTA的两相流模型。计算出的弹丸速度与实验数据吻合良好。数值结果表明,所建立的数学模型给出了正确的趋势,并可以为CTA组件的结构设计提供有用的计算参数。

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