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Base Pressures and Energy Separation in Transonic Turbine Blading

机译:跨音速涡轮叶片的基础压力和能量分离

摘要

This paper concerns unsteady near-wake flows on, and close to, the thick trailing edges of turbine blades, circular cylinders and similar bodies. Subsonic surface base pressures, and Eckert-Weise energy separation in the wake, are principal manifestations of the same phenomenon. Both are a direct result of von Kármán vortex shedding. The subsonic flow past a turbine blade having a thick trailing edge is still not well-predicted and this results from a lack of understanding of the flow past the trailing edge and into the wake. It is here argued that von Kármán vortex shedding is the principal cause of the subsonic base pressure deficit and the related energy separation in the wake. Parallels can be found in the behaviour of elastically-mounted circular cylinders and the caudal fin oscillation propelling fish. These should also affect supersonic flows although the physical causes are different. At supersonic speeds the trailing edge base pressure, and the energy separation in the downstream wake, exhibit different characteristics from the subsonic behavior and need to be treated differently. For supersonic flows, shock waves from a blade trailing edge may impinge on the adjacent suction surface adversely affecting the downstream boundary layer. Supersonic flows most often involve shock and expansion waves. Exotic vortex shedding also has an important role to play. In addition to experimental observation, the guidance of an analytical framework is needed. The eventual goal is accurate computational prediction for validation of computer models and prediction of flow behaviour.
机译:本文涉及涡轮叶片,圆柱体和类似物体的厚尾缘上以及附近的不稳定的近尾流。亚音速表面基本压力和尾流中的Eckert-Weise能量分离是同一现象的主要表现。两者都是vonKármán涡流脱落的直接结果。经过具有厚的后缘的涡轮叶片的亚音速流仍未得到很好的预测,这是由于缺乏对经过后缘并进入尾流的气流的理解所致。有人认为,vonKármán涡旋脱落是亚音速基本压力不足和尾流中相关能量分离的主要原因。在弹性安装的圆柱体和尾鳍振荡推动鱼的行为中可以发现平行。尽管物理原因不同,但这些也会影响超声速流动。在超音速下,后缘基压力和下游尾流中的能量分离表现出与亚音速行为不同的特性,需要区别对待。对于超音速流动,来自叶片后缘的冲击波可能会撞击到相邻的吸力表面,从而对下游边界层产生不利影响。超音速流通常涉及冲击波和膨胀波。异国涡旋脱落也起着重要作用。除了实验观察,还需要分析框架的指导。最终目标是进行准确的计算预测,以验证计算机模型并预测流量行为。

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