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A study of plasma ignition enhancement for aeroramp injectors in supersonic combustion applications.

机译:对超音速燃烧应用中的aeroramp喷射器的等离子点火增强的研究。

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The main goal of this project was to investigate the mixing and chemical phenomena associated with the integration of a low-power, uncooled plasma torch into a fuel injector array. The potential application was for an integrated scramjet igniter/injector, with the hope of producing superior mixing and flameholding performance for supersonic combustion applications. To create a knowledge base for integration, several key investigations were made of the anode material, anode geometry, and spectrographic analysis of different light hydrocarbon fuels and inert feedstocks, all aimed at increasing the ignition potential of the plasma torch. Investigations of the anode material demonstrated the molybdenum provided longer lifetimes than either pure copper or tungsten-copper anodes. In addition, geometric studies of the anode revealed that anodes with short constrictor lengths and sonic exit nozzles provided superior ignition performance based on higher transfer rates of thermal energy from the arc to the feedstock. This resulted in the production of higher hydrogen atom concentrations within the plasma jet. Spectrographic observation of the plasma jets revealed that methane, ethylene, propylene, and propane plasmas all contain excited atomic hydrogen, a radical known to participate in important chain-branching combustion reactions.; Based on the knowledge gained, and encouraging results, a candidate scramjet igniter and flameholder was designed. The design was observed to exhibit a synergistic effect between the plasma igniter and fuel injector in that the fuel injector provides not only a subsonic region for plasma ignition, but also lifts the combustion enhancing radicals out into the fuel-air stream by means of counter-rotating vortices. Furthermore, under the conditions tested, increases in plasma torch power produced an exponential increase in the intensity of downstream products, indicating an enhancement effect. Based upon these observations, the integrated igniter/injector design is expected to perform well in supersonic combustion applications.
机译:该项目的主要目标是研究与低功率,未冷却的等离子炬集成到喷油器阵列中相关的混合和化学现象。潜在的应用是集成的超燃冲压点火器/喷射器,希望为超音速燃烧应用提供出色的混合和阻焰性能。为了创建集成的知识库,对阳极材料,阳极几何形状以及不同轻质烃燃料和惰性原料的光谱分析进行了几项关键研究,所有这些研究的目的都是提高等离子炬的着火潜力。对阳极材料的研究表明,与纯铜或钨铜阳极相比,钼的使用寿命更长。此外,对阳极的几何研究表明,由于电弧到原料的热能传递速率较高,因此具有短缩管长度的阳极和声波出口喷嘴可提供出色的点火性能。这导致在等离子体射流中产生更高的氢原子浓度。等离子流的光谱观察表明,甲烷,乙烯,丙烯和丙烷等离子均包含激发的原子氢,该原子已知参与重要的支链燃烧反应。基于所获得的知识和令人鼓舞的结果,设计了一种超燃冲压发动机点火器和火焰保持器。观察到该设计在等离子点火器和燃料喷射器之间显示出协同作用,因为该燃料喷射器不仅为等离子点火提供了亚音速区域,而且还通过反燃将燃烧增强基团提升到了燃料-空气流中。旋转涡旋。此外,在所测试的条件下,等离子炬功率的增加使下游产品的强度呈指数增加,表明增强效果。基于这些观察结果,集成的点火器/喷射器设计有望在超音速燃烧应用中表现良好。

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