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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >The effect of endwall boundary layer and incoming wakes on secondary flow in a high-lift low-pressure turbine cascade at low Reynolds number
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The effect of endwall boundary layer and incoming wakes on secondary flow in a high-lift low-pressure turbine cascade at low Reynolds number

机译:低雷诺数下高升程低压涡轮叶栅中端壁边界层和进入尾流对二次流的影响

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The endwall flow features are heavily dependent on the incoming boundary layer. It was particularly important to increase understanding the effect of inlet boundary layer thickness on endwall secondary flow under unsteady conditions. In present study, the influences of incoming wakes and various boundary layer thickness on endwall secondary flow were studied in a typical high-lift low-pressure turbine cascade, numerical calculation and experiment measurement of seven-hole probe were adopted at Re = 25,000 (based on the inlet velocity and the axial chord). Upstream wakes were simulated through moving rods upstream of the cascade. Detailed analysis was focused on the mechanisms of periodic wake influencing on the endwall vortex structures under thick endwall boundary layer condition. Influences of two different endwall boundary layer thickness on endwall secondary vortices structures were also comparatively analyzed. Under steady condition without wake, although thick incoming boundary layer reduces the cross-passage pressure gradient near endwall, more low momentum fluid inside thick endwall boundary layer is drawn into secondary vortices, finally resulting in stronger the pressure side leg of the leading edge horseshoe vortex and passage vortex, compared to the results of thin boundary layer condition. Under unsteady condition with thick inlet boundary layer, the "negative jet" effect of incoming wakes delays intersection of pressure side leg and suction side leg of leading edge horseshoe vortex on blade suction surface. The time-averaged strength of passage vortex and counter vortex core decreases by about 32%, and the underturning and overturning of endwall secondary flow is suppressed. The instantaneous results also indicate the endwall secondary vortices are reduced periodically at the position of wakes passing.
机译:端壁流动特征在很大程度上取决于进入的边界层。在不稳定的条件下,增加对入口边界层厚度对端壁二次流影响的理解尤为重要。在本研究中,以典型的高扬程低压水轮机叶栅为例,研究了尾流和不同边界层厚度对端壁二次流的影响,并采用Re = 25,000的七孔探头进行数值计算和实验测量。在进气速度和轴向弦上)。通过级联上游的移动棒模拟了上游尾流。详细的分析集中在厚尾壁边界层条件下周期性尾流影响端壁涡旋结构的机理上。还比较分析了两种不同的端壁边界层厚度对端壁二次涡结构的影响。在没有尾流的稳定条件下,尽管厚的进入边界层减小了端壁附近的交叉通道压力梯度,但厚端壁边界层内部的更多低动量流体被吸入二次涡流,最终导致前缘马蹄涡流的压力侧腿更强和薄壁边界条件的结果相比,通过涡旋。在不稳定且入口边界层较厚的条件下,进入尾流的“负射流”效应会延迟叶片吸力面前缘马蹄涡流的压力侧支腿和吸入侧支腿的相交。通道涡流和反涡流芯的时均强度降低了约32%,并且抑制了端壁二次流的倾覆和倾覆。瞬时结果还表明,在尾流经过的位置,端壁的次级涡流会定期减少。

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