首页> 外文会议>ASME joint US-European Fluids Engineering Division summer meeting >AN EXPERIMENTAL INVESTIGATION ON THE FLOW CHARACTERISTICS OVER DIMPLE ARRAYS PERTINENT TO INTERNAL COOLING OF TURBINE BLADES
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AN EXPERIMENTAL INVESTIGATION ON THE FLOW CHARACTERISTICS OVER DIMPLE ARRAYS PERTINENT TO INTERNAL COOLING OF TURBINE BLADES

机译:与涡轮叶片内部冷却有关的双阵列流动特性的实验研究

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Due to the dimple's unique characteristics of comparatively low pressure loss penalty and good heat transfer enhancement performance, dimple provides a very desirable alternative internal cooling technique for gas turbine blades. In the present study, an experimental investigation was conducted to quantify the flow characteristics over staggered dimple arrays and to examine the vortex structures inside the dimples. In addition to the surface pressure measurements, a high-resolution digital Particle Image Velocimetry (PIV) system was also utilized to achieve detailed flow field measurements to quantify the characteristics of the turbulent channel flow over the dimple arrays in terms of the ensemble-averaged velocity, Reynolds shear stress and turbulence kinetic energy (TKE) distributions. The experimental measurement results show that the friction factor of the dimpled surface is much higher than that of a flat surface. The measured pressure distribution within a dimple reveals clearly that flow separation and attachment would occur inside each dimple. In comparison with those of a conventional channel flow with flat surface, the channel flow over the dimpled arrays was found to have much stronger Reynolds stress and higher TKE level. Such unique flow characteristics are believed to be the reasons why a dimpled surface would have a better heat transfer enhancement performance for internal cooling of turbine blades as reported in those previous studies.
机译:由于凹窝具有相对较低的压力损失损失和良好的传热增强性能的独特特性,因此凹窝为燃气轮机叶片提供了一种非常理想的替代内部冷却技术。在本研究中,进行了一项实验研究,以量化交错酒窝阵列上的流动特性,并检查酒窝内部的涡旋结构。除表面压力测量外,还使用高分辨率数字粒子图像测速(PIV)系统来实现详细的流场测量,从而根据整体平均速度来量化凹坑阵列上湍流通道的流动特性。 ,雷诺剪切应力和湍流动能(TKE)分布。实验测量结果表明,凹坑表面的摩擦系数远高于平坦表面的摩擦系数。在凹坑内测得的压力分布清楚地表明,每个凹坑内都会发生流动分离和附着。与具有平坦表面的常规通道流相比,在凹坑阵列上的通道流具有更大的雷诺应力和更高的TKE水平。这些先前的研究认为,这种独特的流动特性是凹坑表面对涡轮叶片内部冷却具有更好的传热增强性能的原因。

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