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TOWARD THE EXPANSION OF LOW-PRESSURE-TURBINE AIRFOIL DESIGN SPACE

机译:迈向低压涡轮机翼设计空间的扩展

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Future engine requirements, including high-altitude flight of unmanned air vehicles, as well as an impetus to reduce engine cost and weight, are challenging the current state of the art in low-pressure-turbine airfoil design. These new requirements present low-Reynolds number challenges as well as the need for high-performance, high-lift design concepts. Here we report on an effort to expand the relatively well established aerodynamic design space for low-pressure turbine airfoils through the application of recent developments in transition modeling to airfoil design. Analytical and experimental mid-span performance data and predicted loadings are presented for four high-lift airfoil designs based on the Pack B velocity triangles. The new designs represent a systematic expansion of low-pressure turbine airfoil design space through the application of high-lift design concepts for front- and aft-loaded airfoils. All four designs performed as predicted across a range of operationally representative Reynolds numbers. Full-span loss data for the new high-lift designs reveal increased endwall losses, which, with the application of non-axisymmetric endwall contouring, have been substantially reduced. Taken holistically, the results presented here demonstrate that accurate transition modeling provides a reliable method to develop optimized, very high-lift airfoil designs. However, further improvements in endwall-loss mitigation technologies are required to enable the implementation of the very high-lift technology presented here in engine systems.
机译:未来对发动机的要求,包括无人飞行器的高空飞行,以及降低发动机成本和重量的动力,都对低压涡轮机翼设计的当前技术水平提出了挑战。这些新要求提出了低雷诺数的挑战,以及对高性能,高扬程设计概念的需求。在这里,我们报告了通过将过渡模型的最新发展应用到机翼设计中来扩大用于低压涡轮机翼的相对完善的空气动力学设计空间的努力。给出了基于Pack B速度三角形的四种高升翼型设计的分析和实验中跨性能数据以及预计载荷。新设计代表了通过应用前装式和后装式机翼的高升力设计概念,系统地扩展了低压涡轮机翼型的设计空间。所有这四种设计均在一系列具有代表性的雷诺数上按预期执行。新型高扬程设计的全跨度损失数据显示出端壁损失增加,而通过使用非轴对称端壁轮廓线,该损失已大大减少。从整体上看,此处呈现的结果表明,精确的过渡建模为开发优化的超高机翼设计提供了可靠的方法。但是,需要进一步改善端壁损失减轻技术,以实现发动机系统中提出的超高升力技术。

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