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首页> 外文期刊>Journal of propulsion and power >Flowfield Structure in a Fin-Slot Solid Rocket Motor (Part I)
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Flowfield Structure in a Fin-Slot Solid Rocket Motor (Part I)

机译:翅片槽式固体火箭发动机的流场结构(第一部分)

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To accurately predict the overall ignition transient for the reusable solid rocket motor of the space shuttle booster with head-end fin slots, it is necessary to acquire detailed flowfield structure and energy transfer rates on the exposed inert fin-slot propellant surfaces. This paper is the first of a two-part study and deals with the internal flowfield structure and heat-transfer characteristics in the fin-slot region. A subscale (1:10) pie-shaped fin-slot motor was designed to perform diagnostic measurements. An array of 36 flush-mounted heat-flux gauges was installed to detect the local temperature-rise rates at representative regions perpendicular to the propellant surface. Flowfield visualizations were conducted by applying either a chalk-powder/kerosene mixture or many small threads taped to various locations on the inner surface of the sacrificial window of the fin-slot region for high-speed video camera recording. Computational fluid dynamics simulations were performed for modeling the internal flowfield of the test rig. Results were used to develop a heat-transfer correlation governed by the internal flowfield structure within the fin-slot region. The theoretically calculated and experimentally observed internal flowfield patterns were similar in nature. The heat-transfer rates determined from the developed correlation matched the measured data trend within the experimental error. The flowfield structure and heat-transfer rate distribution are mainly governed by the major recirculating flow induced by the igniter jet.
机译:为了准确地预测带有首尾鳍槽的航天飞机助推器的可重复使用的固体火箭发动机的整体点火瞬变,有必要获取暴露的惰性鳍槽推进剂表面上详细的流场结构和能量传输率。本文是由两部分组成的研究的第一部分,涉及鳍槽区域的内部流场结构和传热特性。设计了小于比例(1:10)的扇形翅片槽电动机,以执行诊断测量。安装了36个齐平安装的热通量计阵列,以检测垂直于推进剂表面的代表性区域的局部温升率。流场可视化是通过将粉笔粉/煤油混合物或许多细线粘贴在鳍状槽区域的牺牲窗内表面的各个位置上以进行高速摄像机记录而进行的。进行了计算流体动力学模拟,以对试验台的内部流场进行建模。结果被用于发展由翅片槽区域内的内部流场结构控制的传热相关性。从理论上计算和实验观察到的内部流场模式在本质上是相似的。根据所建立的相关性确定的传热速率与实验误差范围内的测量数据趋势相匹配。流场结构和传热速率分布主要受点火器射流引起的主要再循环流控制。

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