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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Application of Pulse Detonation Combustion to Turbofan Engines
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Application of Pulse Detonation Combustion to Turbofan Engines

机译:脉冲爆震燃烧在涡扇发动机上的应用

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摘要

The potential performance gain of utilizing pulse detonation combustion in the bypass duct of a turbofan engine for possible elimination of the traditional afterburner was investigated in this study. A pulse detonation turbofan engine concept without an afterburner was studied and its performance was assessed. The thrust, specific fuel consumption (SFC), and specific thrust of a conventional turbofan with an afterburner and the new pulse detonation turbofan engine concept were calculated and compared. The pulse detonation device performance in the bypass duct was obtained by using multidimensional CFD analysis. The results showed that significant performance gains can be obtained by using the pulse detonation turbofan engine concept as compared to the conventional afterburning turbofan engine. In particular, it was demonstrated that for a pulse detonation bypass duct operating at a frequency of 100 Hz and higher, the thrust and specific thrust of a pulse-detonation turbofan engine can nearly be twice as much as those of the conventional afterburning turbofan engine. SFC was also shown to be reduced. The effects of fuel-air mixture equivalence ratio and partial filling on performance were also predicted. However, the interaction between pulse detonation combustion in the bypass duct and the engine fan, for potential fan stall, and engine nozzle have not been investigated in this study.
机译:在这项研究中,研究了在涡轮风扇发动机的旁通管道中利用脉冲爆震燃烧来消除传统加力燃烧室的潜在性能增益。研究了没有加力燃烧室的脉冲爆震涡轮风扇发动机概念,并对其性能进行了评估。计算并比较了带有后燃器的传统涡轮风扇的推力,比燃料消耗量(SFC)和比推力,以及新的脉冲爆震涡轮风扇发动机概念。通过使用多维CFD分析获得旁路管道中的脉冲爆震装置性能。结果表明,与传统的后燃涡轮风扇发动机相比,使用脉冲爆震涡轮风扇发动机概念可以获得显着的性能提升。尤其是,已证明对于以100 Hz或更高频率运行的脉冲爆震旁通管,脉冲爆震涡轮风扇发动机的推力和比推力几乎是传统加力涡轮风扇发动机的推力和比推力的两倍。证监会也显示减少。还预测了燃料-空气混合物当量比和部分填充对性能的影响。然而,在这项研究中,尚未研究旁通管中脉冲爆震燃烧与发动机风扇之间的相互作用,以防止潜在的风扇失速和发动机喷嘴。

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