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首页> 外文期刊>Journal of turbomachinery >An Integrated System for the Aerodynamic Design of Compression Systems-Part II: Application
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An Integrated System for the Aerodynamic Design of Compression Systems-Part II: Application

机译:压缩系统空气动力学设计的集成系统-第二部分:应用

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The complexity of modern gas turbine engines has led to the adoption of a modular design approach, in which a conceptual design phase fixes the values for a number of parameters and dimensions in order to facilitate the subdivision of the overall task into a number of simpler design problems. While making the overall problem more tractable, the introduction of these process-intrinsic constraints (such as flow areas and radii between adjacent stages) at a very early phase of the design process can limit the level of performance achievable, neglecting important regions of the design space and concealing important trade-offs between different modules or disciplines. While this approach has worked satisfactorily in the past, the continuous increase in components' efficiencies and performance makes further advances more difficult to achieve. Part I of this paper described the development of a system for the integrated design optimization of gas turbine engines: postponing the setting of the interface constraints to a point where more information is available facilitates better exploration of the available design space and better exploitation of the trade-offs between different disciplines and modules. In this second part of the paper, the proposed approach is applied to several test cases from the design of a three-spool gas turbine engine core compression system, demonstrating the risks associated with a modular design approach and the consistent gains achievable through the proposed integrated optimization approach.
机译:现代燃气涡轮发动机的复杂性导致采用了模块化设计方法,其中概念设计阶段确定了多个参数和尺寸的值,以便于将总体任务细分为多个更简单的设计问题。在使整体问题更易于处理的同时,在设计过程的早期阶段引入这些过程固有的约束(例如相邻阶段之间的流动面积和半径)可能会限制可实现的性能水平,而忽略了设计的重要区域空间并隐藏了不同模块或学科之间的重要权衡。尽管此方法在过去一直令人满意,但组件效率和性能的不断提高使更难取得进一步进展。本文的第一部分描述了用于燃气涡轮发动机的集成设计优化的系统的开发:将接口约束的设置推迟到可获得更多信息的地步,这有助于更好地探索可用的设计空间并更好地利用贸易不同学科和模块之间的差异。在本文的第二部分中,将所建议的方法应用于三阀芯燃气轮机发动机核心压缩系统设计中的几个测试案例,展示了与模块化设计方法相关的风险以及通过所建议的集成可实现的一致收益。优化方法。

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