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Pressure-Gain Combustion Using Shock-Flame Interaction

机译:利用冲击火焰相互作用进行增压燃烧

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摘要

One method of significantly improving the performance of gas turbine engines is to use the thermodynamically more efficient unsteady combustion with pressure rise. In this work, the feasibility of using the interaction of shock waves with a flame to achieve pressure-gain combustion is investigated. A new analytical model is described. The pressure rise and entropy suppression of a single shock-flame interaction event is predicted for the first time. The model is quasi-one dimensional, with the shock wave planar and the flame laminar premixed. Given known initial flowfield and flame geometry, as well as the incident shock Mach number, the model allows the calculation of a fully defined one-dimensional flowfield that is formed at the end of a single shock-flame interaction event. The analytical model is successfully verified using experimental data on methane-oxygen-argon flames. It is found that a single shock-flame interaction event temporally generates a dramatic increase in pressure compared to isobaric combustion with the same unburned gas conditions. The associated increase in temperature remains at a relatively moderate level. Further, combustion entropy rise is significantly reduced through a single shock—flame interaction event.
机译:显着改善燃气涡轮发动机性能的一种方法是在压力升高的情况下使用热力学更有效的不稳定燃烧。在这项工作中,研究了利用冲击波与火焰的相互作用来实现压力增益燃烧的可行性。描述了一种新的分析模型。首次预测了单个冲击-火焰相互作用事件的压力升高和熵抑制。该模型是准一维的,其中冲击波是平面的,火焰层是预混合的。给定已知的初始流场和火焰几何形状以及入射冲击马赫数,该模型允许计算在单个冲击-火焰相互作用事件结束时形成的完全定义的一维流场。使用甲烷-氧气-氩气火焰的实验数据已成功验证了该分析模型。已经发现,与相同的未燃烧气体条件下的等压燃烧相比,单个冲击-火焰相互作用事件在时间上会产生压力的急剧增加。相关的温度升高保持在相对中等的水平。此外,通过一次冲击-火焰相互作用事件,燃烧熵的上升被大大降低。

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  • 来源
    《Journal of propulsion and power》 |2013年第5期|1181-1193|共13页
  • 作者单位

    Institute of Aircraft Propulsion Systems Universitat Stuttgart, 70174 Stuttgart, Germany;

    Institute of Aircraft Propulsion Systems Universitat Stuttgart, 70174 Stuttgart, Germany;

    Institute of Aircraft Propulsion Systems Universitat Stuttgart, 70174 Stuttgart, Germany;

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