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New Method to Determine the Velocities of Particles on a Solid Propellant Surface in a Solid Rocket Motor

机译:确定固体火箭发动机中固体推进剂表面颗粒速度的新方法

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Use of aluminized composite solid propellants and submerged nozzles are common in solid rocket motors (SRM). Due to the generation of slag, which injects into a combusted gas flow, a two-phase flow pattern is one of the main flow characteristics that need to be investigated in SRM. Validation of two-phase flow modeling in a solid rocket motor combustion chamber is the focus of this research. The particles' boundary conditions constrain their trajectories, which affect both the two-phase flow calculations, and the evaluation of the slag accumulation. A harsh operation environment in the SRM with high temperatures and high pressure makes the measurement of the internal flow field quite difficult. The open literature includes only a few sets of experimental data that can be used to validate theoretical analyses and numerical calculations for the two-phase flow in a SRM. Therefore, mathematical models that calculate the trajectories of particles may reach different conclusions mainly because of the boundary conditions. A new method to determine the particle velocities on the solid propellant surface is developed in this study, which is based on the x-ray real-time radiography (RTR) technique, and is coupled with the two-phase flow numerical simulation. Other methods imitate the particle ejection from the propellant surface. The RTR high-speed motion analyzer measures the trajectory of the metal particles in a combustion chamber. An image processing software was developed for tracing a slug particle path with the RTR images in the combustion chamber, by which the trajectories of particles were successfully obtained.
机译:固体火箭发动机(SRM)中普遍使用铝化复合固体推进剂和浸没式喷嘴。由于产生的渣渣会喷射到燃烧的气流中,因此两相流型态是SRM中需要研究的主要流量特性之一。固体火箭发动机燃烧室中两相流模型的验证是本研究的重点。颗粒的边界条件限制了它们的轨迹,这既影响了两相流计算,也影响了炉渣积聚的评估。 SRM在高温高压下的苛刻操作环境使内部流场的测量非常困难。开放文献仅包括几套实验数据,可用于验证SRM中两相流的理论分析和数值计算。因此,主要由于边界条件,计算粒子轨迹的数学模型可能得出不同的结论。本研究基于X射线实时射线照相(RTR)技术,并结合两相流数值模拟,开发了一种确定固体推进剂表面粒子速度的新方法。其他方法模仿粒子从推进剂表面喷射。 RTR高速运动分析仪可测量燃烧室中金属颗粒的轨迹。开发了一种图像处理软件,用于在燃烧室中使用RTR图像来跟踪团状颗粒路径,从而成功获得了颗粒的轨迹。

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