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Optimization Study of an Intercooled Recuperated Aero-Engine

机译:中冷回热式航空发动机的优化研究

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摘要

The design space of an intercooled recuperated aero-engine has been explored using detailed engine and aircraft performance, weight, and dimensions modeling. The design parameters of the engine fan, core, intercooler, recuperator, cooling-air ratio, and variable-geometry settings for the low-pressure turbine have been optimized for minimum mission fuel. Analysis shows that the improvement achieved in terms of performance against the datum design can be attributed primarily to an increase in thermal efficiency. A parametric study has also been carried out around the optimal design to understand the impact of the chosen design parameters on mission fuel burn. The study demonstrates in detail the substantially more complex interrelationship that the different fan design parameters have in terms of engine performance compared to what is typical for conventional turbofan designs. Furthermore, the optimal pressure ratio split between the low-pressure compressor and the high-pressure compressor aligns well with a previous analytical study. It is also revealed that the increased amount of cooling air required when a hot bleeding concept is adopted is in fact beneficial for mission fuel burn. Finally, the study concludes that the potential of using variable geometry in the low-pressure turbine for improving fuel burn is limited by the high-pressure turbine blade-metal temperature.
机译:通过使用详细的发动机和飞机性能,重量和尺寸模型,探索了中冷换热式航空发动机的设计空间。低压风机的发动机风扇,核心,中冷器,同流换热器,冷却空气比和可变几何设置的设计参数已经过优化,以减少任务燃油。分析表明,相对于基准设计而言,性能方面的改进主要归因于热效率的提高。还围绕最佳设计进行了参数研究,以了解所选设计参数对任务燃料燃烧的影响。这项研究详细证明了与常规涡轮风扇设计相比,不同风扇设计参数在发动机性能方面存在实质上更为复杂的相互关系。此外,低压压缩机和高压压缩机之间的最佳压力比分配与先前的分析研究非常吻合。还显示出,当采用热排气概念时所需的增加的冷却空气量实际上有利于任务燃料燃烧。最后,研究得出结论,高压涡轮叶片金属温度限制了在低压涡轮中使用可变几何形状来改善燃料燃烧的潜力。

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  • 来源
    《Journal of propulsion and power》 |2013年第2期|424-432|共9页
  • 作者单位

    Chalmers University of Technology, 412 96 Gothenburg, Sweden,Department of Applied Mechanics, Division of Fluid Dynamics;

    Chalmers University of Technology, 412 96 Gothenburg, Sweden,Department of Applied Mechanics, Division of Fluid Dynamics;

    Chalmers University of Technology, 412 96 Gothenburg, Sweden;

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