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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Flow physics of highly loaded tandem compressor cascade with non-axisymmetric endwall profiling
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Flow physics of highly loaded tandem compressor cascade with non-axisymmetric endwall profiling

机译:具有非轴对称末端剖面的高负载串联压缩机级联的流量物理

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摘要

Tandem configuration is an effective methodology to reduce flow separation on compressor blade suction surface and to improve blade loading. However, in modern highly loaded cases, corner separation remains as its single blade counterpart. In this study, non-axisymmetric endwall profiling (NAEP) was utilized in a highly loaded tandem cascade (diffusion factor D = 0.69), aiming at reducing its severe corner separation and revealing the unique flow mechanism while NAEP is utilized in tandem cascade. NAEP was designed in both forward (F) blade and rare (R) blade separately, and was investigated numerically in tandem environment. Results show that, NAEP in F blade passage can effectively eliminate the corner separation and reduce loss generation, whereas NAEP in R blade passage has no positive effect on corner separation and even promotes loss production. The optimal NAEP approximately removes the corner separation completely, with loss coefficient reducing by as much as 37.8%. The optimal NAEP for the tandem cascade features optimal axial location at the origin of corner separation. There is an optimal NAEP height (0.02 of blade height), under which NAEP can achieve pretty good control effect while the peak of NAEP varies in a large axial location range. In the tandem configuration, it is found that NAEP transfers blade loading from R blade to F blade; the static pressure increases significantly for the entire cascade, but the static pressure distribution of F blade does not exhibit as the design intent of NAEP. In addition, it is interesting to find that the flow turning near endwall reduces after endwall profiling, which is unique in tandem cascade and is contrast to the view on conventional configuration. On the contrary, NAEP in R blade has no influence on the corner separation of the tandem cascade; due to the decrement of cross-passage pressure gradient for R blade, the flow overturning near endwall reduces.
机译:串联配置是一种有效的方法,可以减少压缩机叶片抽吸表面上的流量分离,并改善刀片加载。然而,在现代高负荷的情况下,转角分离仍然是其单刀片对应物。在该研究中,在高负载的串联级联(扩散因子D = 0.69)中使用非轴对称的端壁分析(NAEP),旨在降低其严重的角分离并揭示独特的流动机制,而NAEP用于串联级联。 Naep在正向(f)叶片和稀有(r)刀片上方设计,并在串联环境中数值进行了研究。结果表明,F叶片通道的NAEP可以有效地消除角落分离并减少丧失产生,而R刀片通道的NAEP对角分离没有积极影响,甚至促进损失生产。最佳的NAEP完全除去拐角分离,损耗系数减少多达37.8%。串联级联的最佳NAEP在转角分离起源时具有最佳轴向位置。有最佳的Naep高度(0.02的叶片高度),在该空中可以实现相当良好的控制效果,而Naep的峰值在大的轴向位置范围内变化。在串联配置中,发现Naep转移从R刀片加载到F刀片的叶片;整个级联的静压显着增加,但F刀片的静压分布不作为NAEP的设计意图。此外,有趣的是发现端壁附近的流动在末端剖面后转动,这在串联级联中是独特的,与传统配置的视图形成对比。相反,R叶片的Naep对串联级联的角落分离没有影响;由于R叶片的交叉通道压力梯度的减小,倾向于终壁附近的流动减少了。

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