Effects of Endwall 3D Contouring on Film Cooling Effectiveness of Cylindrical Hole Injections at Different Locations on Vane Endwall

Pingting Chen, Hongyu Gao, Xueying Li, Jing Ren, Hongde Jiang
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引用次数: 3

Abstract

With the development of gas turbine, the secondary flow loss in vane passage is getting higher. To reduce the strength of secondary flows within vane passage, endwall 3D contouring is an effective design. Endwall 3D contouring can lead to significant changes in the secondary flow vortices, which lead to changes on jet-to-secondary flow interaction and then changes on the film cooling effectiveness. Meanwhile, the geometry configuration of the contoured endwall, such as the rising and falling on the endwall, can also have an impact on film cooling performance. As a result, the film cooling performance on contoured endwall differs from that on flat endwall. Understanding the difference in film cooling characteristics on the contoured endwall and flat endwall may help to make better endwall contouring design and better endwall film cooling arrangement. The present experiment compares the film cooling effectiveness of cylindrical hole injections at different locations on 3D contoured endwall versus flat endwall in an NGV (nozzle guide vane) passage. The measurement is performed in a low speed wind tunnel with a F-class annular sector NGV cascade. The cylindrical hole injections are located as 4 different rows at −30% axial chord, 30% axial chord, 50% axial chord and 70% axial chord. Endwall pressure distribution is measured with pressure taps by pressure sensor while film cooling effectiveness is measured using PSP (Pressure Sensitive Paint). Two density ratios with 1.0 and 1.5 and several average blowing ratios are investigated. Effects of endwall contouring, density ratio and blowing ratio on film cooling effectiveness are obtained and the results are presented and explained in this investigation.
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端壁三维轮廓对叶片端壁不同位置圆柱孔注入气膜冷却效果的影响
随着燃气轮机的发展,叶片通道内的二次流损失越来越大。为了降低叶片通道内二次流的强度,端壁三维轮廓是一种有效的设计方法。端壁三维轮廓会导致二次流涡的显著变化,从而导致射流与二次流相互作用的变化,进而导致气膜冷却效果的变化。同时,轮廓端壁的几何形态,如端壁的上升和下降,也会对气膜冷却性能产生影响。因此,在轮廓端壁上的气膜冷却性能与在平面端壁上的气膜冷却性能不同。了解异形端壁和平面端壁上气膜冷却特性的差异有助于进行更好的端壁异形设计和更好的端壁气膜冷却布置。本实验比较了喷嘴导叶通道三维轮廓端壁与平面端壁不同位置圆柱形孔注入的气膜冷却效果。在低速风洞中采用f级环形扇形NGV叶栅进行测量。柱形井注入位于- 30%轴向弦、30%轴向弦、50%轴向弦和70%轴向弦的4排不同位置。端壁压力分布由压力传感器用压力水龙头测量,而膜冷却效果使用PSP(压敏涂料)测量。研究了1.0和1.5两种密度比和几种平均吹气比。得到了端壁形状、密度比和吹气比对气膜冷却效果的影响,并对结果进行了说明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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