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USING PROFILED ENDWALLS, BLADE LEAN AND LEADING EDGE EXTENSIONS TO MINIMISE SECONDARY FLOW

机译:使用型材尾墙,叶片倾斜和前沿延伸来最小化二次流动

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Methods to reduce secondary flows and losses in turbines have been studied for many years. This paper presents the latest results from a series of projects using profiled end walls, blade lean and modifying the blade profile near the end wall. In addition a review is made of the series of designs and experiments with the aim of improving our understanding of these methods. Three distinct mechanisms are identified, the first reducing the cross passage pressure gradient in the early part of the blade passage by the wall profiling. The second uses reversed compound lean which reduces mid-span losses and forces the secondary How region closer to the end wall by inducing spanwise pressure gradients. The third uses a leading edge extension, resulting in local sweep at the end wall which reduces the blade loading at the leading edge, and hence the early cross passage pressure gradient. The results are shown not to be additive, and although large reductions in secondary flow can be achieved, these do not always result in reduced losses. Computational based design techniques, backed up by experiment are essential to produce optimal designs.
机译:减少涡轮机二次流量和损失的方法已经研究了很多年。本文介绍了使用异形端壁,叶片倾斜和修改端壁附近的叶片轮廓的一系列项目的最新结果。此外,还对一系列设计和实验进行了审查,目的是增进我们对这些方法的理解。确定了三种不同的机制,第一种机制是通过壁轮廓降低叶片通道早期部分的横向通道压力梯度。第二种使用反向复合稀料,它减少了跨度损失,并通过产生跨度方向的压力梯度,使次级How区域更靠近端壁。第三种使用前缘延伸,从而在端壁处进行局部扫掠,从而减少了叶片在前缘处的负荷,从而减少了早期的交叉通道压力梯度。结果表明,该结果并非是累加的,尽管可以实现二次流量的大幅减少,但并不总能减少损失。以实验为基础的基于计算的设计技术对于产生最佳设计至关重要。

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