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Multiple Velocity Profile Measurements in Hypersonic Flows using Sequentially-Imaged Fluorescence Tagging

机译:使用顺序成像荧光标记的高超音速流中的多速度剖面测量

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摘要

Nitric-oxide planar laser-induced fluorescence (NO PLIF) was used to perform velocity measurements in hypersonic flows by generating multiple tagged lines which fluoresce as they convect downstream. For each laser pulse, a single interline, progressive scan intensified CCD camera was used to obtain separate images of the initial undelayed and delayed NO molecules that had been tagged by the laser. The CCD configuration allowed for sub-microsecond acquisition of both images, resulting in sub-microsecond temporal resolution as well as sub-mm spatial resolution (0.5-mm x 0.7-mm). Determination of axial velocity was made by application of a cross-correlation analysis of the horizontal shift of individual tagged lines. Quantification of systematic errors, the contribution of gating/exposure duration errors, and influence of collision rate on fluorescence to temporal uncertainty were made. Quantification of the spatial uncertainty depended upon the analysis technique and signal-to-noise of the acquired profiles. This investigation focused on two hypersonic flow experiments: (1) a reaction control system (RCS) jet on an Orion Crew Exploration Vehicle (CEV) wind tunnel model and (2) a 10-degree half-angle wedge containing a 2-mm tall, 4-mm wide cylindrical boundary layer trip. The experiments were performed at the NASA Langley Research Center's 31-inch Mach 10 wind tunnel.
机译:一氧化氮平面激光诱导的荧光(NO PLIF)用于通过产生多条标记的线在高超声速流中进行速度测量,这些标记的线在下游对流时发出荧光。对于每个激光脉冲,使用单行间,逐行扫描增强型CCD相机获取已被激光标记的初始未延迟和延迟NO分子的单独图像。 CCD配置允许亚微秒的时间获取两个图像,从而产生亚微秒的时间分辨率以及亚毫米的空间分辨率(0.5毫米x 0.7毫米)。通过对单个标记线的水平移动进行互相关分析来确定轴向速度。量化了系统误差,选通/曝光持续时间误差的贡献以及碰撞速率对荧光对时间不确定性的影响。空间不确定性的量化取决于分析技术和所采集轮廓的信噪比。这项研究的重点是两个高超音速流动实验:(1)猎户座乘员探索车(CEV)风洞模型上的反应控制系统(RCS)射流,以及(2)高度为2毫米的10度半角楔形,4毫米宽的圆柱形边界层脱扣。实验是在NASA兰利研究中心的31英寸Mach 10风洞中进行的。

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