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Numerical modeling and investigation of two-phase reactive flow in a high-low pressure chambers system

机译:高低压室系统中两相反应流的数值模拟与研究

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A high-low pressure chambers system is proposed to meet the demands of low launch acceleration for informative equipment in many special fields such as Aeronautics, Astronautics and Weaponry. A two-dimensional two-phase flow numerical model is established to describe the complex physical process based on a modified two-fluid theory, which takes into account gas production, interphase drag, inter granular stress, and heat transfer between two phases. In order to reduce the computational cost, the parameters in the high-pressure chamber at the instant the vent-holes open are calculated by the zero dimensional model as the initial conditions for the two-phase flow simulation in the high-low pressure chambers system. The simulation results reveal good agreement with the experiments and the launch acceleration of a projectile can be improved by this system. The propellant particles can be tracked clearly in both chambers and a strong packing of particles at the base of projectile will cause the pressure to rise faster than at other areas both in the axis and radial directions. The length-diameter ratio of the high-pressure chamber (a typical multi-dimensional parameter) is investigated. Different length diameter ratios can affect the. maximum pressure drop and the loss of total pressure impulse through the vent-hole, then the muzzle velocity and the launch acceleration of projectiles can be influenced directly. This article puts forward a new prediction tool for the understanding and design of transient processes in high-low pressure chambers system. (C) 2016 Elsevier Ltd. All rights reserved.
机译:提出了一种高低压舱系统,以满足航空,航天和武器等许多特殊领域对信息设备的低发射加速要求。基于改进的两流体理论,建立了一个二维两相流数值模型来描述复杂的物理过程,该模型考虑了产气,相间阻力,颗粒间应力以及两相之间的传热。为了降低计算成本,通过零维模型来计算通气孔打开瞬间高压腔中的参数,作为在高低压腔系统中进行两相流模拟的初始条件。仿真结果与实验结果吻合良好,该系统可以提高弹丸的发射速度。可以在两个腔室中清楚地跟踪推进剂颗粒,并且在弹丸底部牢固地堆积颗粒会导致压力的上升速度快于轴向和径向上的其他区域。研究了高压室的长径比(典型的多维参数)。不同的长度直径比会影响。最大压降和通过通气孔的总压力脉冲的损失,则可以直接影响炮口的速度和弹丸的发射加速度。本文提出了一种新的预测工具,用于了解和设计高低压室系统中的瞬态过程。 (C)2016 Elsevier Ltd.保留所有权利。

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