首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE2011 >EFFECT OF AIRFOIL SHAPE AND TURNING ANGLE ON TURBINE AIRFOIL AERODYNAMIC PERFORMANCE AT TRANSONIC CONDITIONS
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EFFECT OF AIRFOIL SHAPE AND TURNING ANGLE ON TURBINE AIRFOIL AERODYNAMIC PERFORMANCE AT TRANSONIC CONDITIONS

机译:跨音速条件下机翼形状和转向角对涡轮机翼型气动性能的影响

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Performance data for high turning gas turbine blades under transonic Mach numbers is significantly lacking in literature. Performance of three gas turbine airfoils with varying turning angles at transonic flow conditions was investigated in this study. Midspan total pressure loss, secondary flow field and static pressure measurements on the airfoil surface in a linear cascade setting were measured. Airfoil curvature and true chord were varied to change the loading vs. chord for each airfoil. Airfoils A, D and E are designed to operate at different velocity triangles. Velocity triangle requirements (inlet/exit Mach number and gas angles) come from ID and 2D models that include calibrated loss systems. One of the goals of this study was to use the experimental data to confirm/refine loss predictions for the effect of various Mach numbers and gas turning angles. The cascade exit Mach numbers were varied within a range from 0.6 to 1.1. The airfoil turning angle ranges from 120° to 138°. A realistic inlet/exit Mach number ratio, that is representative of that seen in a real engine, was obtained by reducing the inlet span with respect to the exit span of the airfoil, thereby creating a quasi 2D cascade. In order to compare the experimental results and study the detailed flow characteristics, 3D viscous compressible CFD analysis was also carried out.
机译:跨音速马赫数下高转速燃气轮机叶片的性能数据在文献中明显缺乏。在本研究中,研究了三个具有不同转角的燃气轮机翼型在跨音速流动条件下的性能。测量了线性级联设置下翼型表面的中跨总压力损失,次级流场和静压力测量值。改变翼型曲率和真弦以改变每种翼型的载荷与弦的关系。翼型A,D和E设计为以不同的速度三角形运行。速度三角形要求(入口/出口马赫数和气角)来自包含校准损耗系统的ID和2D模型。这项研究的目标之一是使用实验数据来确认/优化各种马赫数和气体转向角的影响的损失预测。级联出口马赫数在0.6到1.1的范围内变化。机翼转向角范围为120°至138°。通过相对于翼型的出口跨度减小入口跨度,从而获得准2D级联,可以获得代表实际发动机中的实际进气/出口马赫数比的代表。为了比较实验结果并研究详细的流动特性,还进行了3D粘性可压缩CFD分析。

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