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Effect of Blade Loading on the Structure of Tip Leakage Flow in a Forward-Swept Axial-Flow Fan

机译:叶片载荷对前掠轴流风机叶尖泄漏流结构的影响

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摘要

An experimental analysis using three-dimensional laser Doppler velocimetry (LDV) measurement and computational analysis using the Reynolds stress model of the commercial flow solver, FLUENT, have been conducted to give a clear understanding of the effect of blade loading on the structure of tip leakage flow in a forward-swept axial-flow fan operating at the maximum efficiency condition (φ = 0.25) and two off-design conditions (φ = 0.21 and 0.30). As the blade loading increased, the onset position of the rolling-up of tip leakage flow moved upstream and the trajectory of tip leakage vortex (TLV) center was more inclined toward the circumferential direction. Because the casing boundary layer became thicker and the mixing between the through-flow and the leakage jet with the different flow direction was enforced, the streamwise vorticity decayed more rapidly with the blade loading increasing. A distinct TLV was observed downstream of the blade trailing edge at φ = 0.30, but it was not found at φ = 0.21 and 0.25. In comparison with LDV measurement data, the computed results predicted the complex viscous flow patterns inside the tip region in a reliable level. Influence of the relative motion of the casing wall on the structure of tip leakage flow was also investigated. Since it enhanced the strength of TLV by dragging the fluid through the tip clearance region, the magnitudes of the streamwise vorticity for the stationary casing wall were considerably larger than those for the rotating casing wall. Therefore, for the rotating casing wall, the high momentum region related with the blockage effect of TLV was reduced in comparison with that of the stationary casing wall.
机译:已经进行了使用三维激光多普勒测速仪(LDV)测量的实验分析和使用商用流量求解器FLUENT的雷诺应力模型的计算分析,以清楚地了解叶片载荷对叶尖泄漏结构的影响在最大效率条件(φ= 0.25)和两个非设计条件(φ= 0.21和0.30)下运行的前掠轴流风扇中的气流。随着叶片载荷的增加,叶尖泄漏流的起伏的开始位置向上游移动,叶尖泄漏涡旋(TLV)中心的轨迹向圆周方向倾斜。由于壳体边界层变厚,并且在流向和流向不同的泄漏射流之间进行了混合,因此随着叶片载荷的增加,沿流方向的涡旋衰减更快。在叶片后缘的下游,在φ= 0.30处观察到明显的TLV,但在φ= 0.21和0.25处未发现。与LDV测量数据相比,计算结果预测了尖端区域内部复杂的粘性流动模式处于可靠水平。还研究了套管壁的相对运动对尖端泄漏流结构的影响。由于它通过将流体拖曳通过尖端间隙区域而提高了TLV的强度,因此,固定套管壁的沿流方向的涡流幅度明显大于旋转套管壁的沿流方向的涡流幅度。因此,对于旋转的壳体壁,与固定的壳体壁相比,减小了与TLV的阻塞效应有关的高动量区域。

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