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Raman Gas Species Measurements in Hydrocarbon-Fueled Rocket Engine Injector Flows

机译:碳氢燃料火箭发动机喷射器流动中的拉曼气体形态测量

摘要

Propellent injector development at MSFC (Marshall Space Flight Center) includes experimental analysis using optical techniques, such as Raman, fluorescence, or Mie scattering. For the application of spontaneous Raman scattering to hydrocarbon-fueled flows a technique needs to be developed to remove the interfering polycyclic aromatic hydrocarbon fluorescence from the relatively weak Raman signals. A current application of such a technique is to the analysis of the mixing and combustion performance of multijet, impinging-jet candidate fuel injectors for the baseline Mars ascent engine, which will burn methane and liquid oxygen produced in-situ on Mars to reduce the propellent mass transported to Mars for future manned Mars missions. The present technique takes advantage of the strongly polarized nature of Raman scattering. It is shown to be discernable from unpolarized fluorescence interference by subtracting one polarized image from another. Both of these polarized images are obtained from a single laser pulse by using a polarization-separating calcite rhomb mounted in the imaging spectrograph. A demonstration in a propane-air flame is presented.
机译:MSFC(马歇尔太空飞行中心)的推进剂喷射器开发包括使用光学技术(例如拉曼光谱,荧光或米氏散射)的实验分析。为了将自发拉曼散射应用于烃类燃料流,需要开发一种技术,以从相对较弱的拉曼信号中除去干扰的多环芳烃荧光。该技术的当前应用是分析用于基准Mars Ascent发动机的多喷嘴撞击式候选燃料喷射器的混合和燃烧性能,该燃烧器将燃烧在Mars现场产生的甲烷和液氧以减少推进剂大量运输到火星,以进行未来的载人火星任务。本技术利用了拉曼散射的强偏振特性。通过从另一幅偏振图像中减去一个偏振图像,可以将其与非偏振荧光干扰区分开。这两个偏振图像都是通过使用安装在成像光谱仪中的偏振分离方解石菱形从单个激光脉冲获得的。演示了在丙烷-空气火焰中的演示。

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