轴向倾斜可变定子叶片平台对分形腔和主流的影响

J. Janssen, Daniel Pohl, P. Jeschke, Alexander Halcoussis, R. Hain, T. Fuchs
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引用次数: 0

摘要

本文通过环形叶栅风洞的光学和气动测量以及稳态CFD分析,研究了轴向倾斜可变定子叶片平台对扇形空腔和通道流动的影响。轴向压气机的可变定子叶片(vsv)要求与端壁有一定的间隙。这意味着叶片平台周围的便士腔是不可避免的。生产和装配偏差可导致叶片平台,这是倾斜的圆周轴。由于这种变形,台地边缘出现了向后退的台阶。在一个环形叶栅风洞中,比较了有和没有平台倾斜的几何形状的Penny空腔和主流,该风洞由单排30个vsv组成。详细的颗粒图像测速(PIV)测量进行了便士腔内和叶片通道。利用二维多孔压力探头在流入和流出两处进行穿越,获得了稳定的压力和速度数据。此外,气动测量是在便士腔内使用压力龙头进行的。此外,油流的可视化进行了翼型,轮毂和便士腔表面。在边界条件下的稳定CFD模拟,根据测量结果,与实验数据进行了基准测试。结果表明,倾斜的VSV平台减少了进入和流出便士腔的质量流量。通过减少分形腔泄漏,平台倾斜也会影响通道流动,从而降低泄漏流区的湍流度和总压损失。综上所述,本文论证了便士平台倾斜对空腔流动和通道流动的影响,并为便士腔相关损失的机制提供了新的见解。
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Effect of an Axially Tilted Variable Stator Vane Platform on Penny Cavity and Main Flow
This paper presents the impact of an axially tilted variable stator vane platform on penny cavity flow and passage flow, with the aid of both optical and pneumatic measurements in an annular cascade wind tunnel as well as steady CFD analyses. Variable stator vanes (VSVs) in axial compressors require a clearance from the endwalls. This means that penny cavities around the vane platform are inevitable. Production and assembly deviations can result in a vane platform which is tilted about the circumferential axis. Due to this deformation, backward facing steps occur on the platform edge. Penny cavity and main flow in geometries with and without platform tilting were compared in an annular cascade wind tunnel, which comprises a single row of 30 VSVs. Detailed particle image velocimetry (PIV) measurements were conducted inside the penny cavity and in the vane passage. Steady pressure and velocity data was obtained by two-dimensional multi-hole pressure probe traverses in the inflow and the outflow. Furthermore, pneumatic measurements were carried out using pressure taps inside the penny cavity. Additionally, oil flow visualization was conducted on the airfoil, hub, and penny cavity surfaces. Steady CFD simulations with boundary conditions, according to the measurements, have been benchmarked against experimental data. The results show that tilting the VSV platform reduces the mass flow into and out of the penny cavity. By decreasing penny cavity leakage, platform tilting also affects the passage flow where it leads to a reduced turbulence level and total pressure loss in the leakage flow region. In summary, the paper demonstrates the influence of penny platform tilting on cavity flow and passage flow and provides new insights into the mechanisms of penny cavity-associated losses.
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