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Ejector Enhanced Pulsejet Based Pressure Gain Combustors: An Old Idea With a New Twist

机译:喷射器增强型基于Pulsejet的压力增益燃烧室:一种新思路的旧观念

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摘要

An experimental investigation of pressure-gain combustion for gas turbine application is described. The test article consists of an off-the-shelf valved pulsejet, and an optimized ejector, both housed within a shroud. The combination forms an effective can combustor across which there is a modest total pressure rise rather than the usual loss found in conventional combustors. Although the concept of using a pulsejet to affect semi-constant volume (i.e., pressure-gain) combustion is not new, that of combining it with a well designed ejector to efficiently mix the bypass flow is. The result is a device which to date has demonstrated an overall pressure rise of approximately 3.5 percent at an overall temperature ratio commensurate with modern gas turbines. This pressure ratio is substantially higher than what has been previously reported in pulsejet-based combustion experiments. Flow non-uniformities in the downstream portion of the device are also shown to be substantially reduced compared to those within the pulsejet itself. The standard deviation of total pressure fluctuations, measured just downstream of the ejector was only 5.0 percent of the mean. This smoothing aspect of the device is critical to turbomachinery applications since turbine performance is, in general, negatively affected by flow non-uniformities and unsteadiness. The experimental rig will be described and details of the performance measurements will be presented. Analyses showing the thermodynamic benefits from this level of pressure-gain performance in a gas turbine will also be assessed for several engine types. Issues regarding practical development of such a device are discussed, as are potential emissions reductions resulting from the rich burning nature of the pulsejet and the rapid mixing (quenching) associated with unsteady ejectors.
机译:描述了用于燃气轮机的压力增益燃烧的实验研究。测试物品包括一个现成的带阀脉冲喷射器和一个优化的喷射器,两者都装在一个护罩中。这种组合形成了一个有效的罐式燃烧器,在该罐式燃烧器上有适度的总压力上升,而不是传统燃烧器中常见的损失。尽管使用脉冲喷射来影响半恒定体积(即压力增益)燃烧的概念并不新鲜,但将其与设计合理的喷射器结合以有效地混合旁路流的概念却并不新鲜。结果是,迄今为止,该设备在与现代燃气轮机相当的总温度比下显示出约3.5%的总压力上升。该压力比明显高于先前在基于脉冲喷射的燃烧实验中已经报道的压力比。与脉冲喷射器自身内部的流动不均匀性相比,该装置下游部分的流动不均匀性也显示出显着降低。仅在喷射器下游测得的总压力波动的标准偏差仅为平均值的5.0%。该设备的这种平滑方面对于涡轮机械应用至关重要,因为通常,涡轮性能会受到流动不均匀性和不稳定的负面影响。将描述实验装置,并将介绍性能测量的详细信息。还将针对几种发动机类型评估显示出这种水平的燃气轮机压力增益性能所带来的热力学好处的分析结果。讨论了与这种装置的实际开发有关的问题,以及由于脉冲喷射器燃烧特性丰富以及与不稳定喷射器相关的快速混合(淬火)而导致的潜在排放量减少。

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