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Semi-Inverse Design Optimization Method for Film-Cooling Arrangement of High-Pressure Turbine Vanes

机译:高压涡轮叶片冷却装置的半逆设计优化方法

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摘要

A semi-inverse design optimization method for the film-cooling arrangement of high-pressure turbine first-stage vanes is initiated based on a combinatorial optimization algorithm, a one-dimensional heat conduction model, and computational fluid dynamics methods, in which inlet temperature distortion, radiation, and inlet swirl are all considered simultaneously. This semi-inverse design optimization method can optimize the total coolant amount of the film-cooling structure while ensuring an acceptable metal temperature distribution, which finally provides a scattered and nonuniform arrangement of the film-cooling holes and a minimal coolant amount The optimization methodology is tested on the General Electric energy-efficient engine first-stage vane under a high thermal load, and the optimization result is verified by the conjugate heat transfer computational fluid dynamics simulations. As for the optimized cooling structure, a significant improvement of cooling performance is observed while the total coolant amount is slightly reduced compared with the prototype. It is also found that neglecting each of the three factors (inlet temperature distortion, radiation, and inlet swirl) could result in a significantly different film-cooling arrangement while maintaining the overall cooling performance, which highlights the capability of the semi-inverse design optimization method at various design conditions.
机译:基于组合优化算法,一维热传导模型和计算流体动力学方法,引入了入口温度畸变的高压涡轮机一级叶片薄膜冷却装置的半逆设计优化方法。 ,辐射和入口涡流都被同时考虑。这种半反设计优化方法可以在确保可接受的金属温度分布的同时优化薄膜冷却结构的总冷却液量,最终提供分散且不均匀的薄膜冷却孔布置和最小的冷却液量。在通用电气高能效发动机第一级叶片上进行了高热负荷试验,并通过共轭传热计算流体动力学模拟验证了优化结果。至于优化的冷却结构,与原型相比,冷却性能显着提高,而总冷却液量则略有减少。还发现,忽略三个因素(入口温度变形,辐射和入口涡流)中的每一个,都可能导致薄膜冷却布置发生显着不同,同时保持整体冷却性能,这突出了半逆设计优化的能力方法在各种设计条件下。

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  • 来源
    《Journal of propulsion and power》 |2016年第3期|659-673|共15页
  • 作者单位

    Shanghai Jiao Tong University, 200240 Shanghai, People's Republic of China;

    Chinese Academy of Sciences, 201210 Shanghai, People's Republic of China;

    Shanghai Jiao Tong University, 200240 Shanghai, People's Republic of China;

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  • 正文语种 eng
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