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Validation and flow structure analysis in a turbofan stage at windmill

机译:风车涡扇级验证及流场分析

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In the present study, the flow through the fan stage of a high bypass ratio turbofan at windmill is studied numerically. First, steady mixing plane simulations are validated against detailed experimental engine test-bed measurements, at several locations within the fan stage and close to the core/bypass flow splitter. Good agreement between the numerical and experimental results is obtained for the global operating point in the fan map. For the two windmilling points considered, it appears that as the flight Mach number is reduced, the windmilling operating point moves closer to the stability limit of the fan. For the radial profiles, good agreement is found downstream of the rotor. Downstream of the stator, it is shown that the steady approach fails to reproduce some important feature of the flow. A local flow analysis is proposed, evidencing several characteristics of the flow in windmilling: in the rotor, the size of the separation zone is found to increase from hub to tip, due to a solidity effect. In the stator, massive flow separation occurs at mid-span, which leads to the formation of two streamwise counter-rotating vortices. Then, the nonlinear harmonic method is applied to a section (at 70% of the relative span) of the fan stage. A modal analysis is performed, showing a specific behavior at windmill: the massively separated flows in the rotor and the stator entail strong rotor/stator interaction modes. Finally, the unsteady flow pattern is examined: the velocity defect of the rotor wake, which periodically increases the flow angle on the stator, is shown to trigger a periodic movement of the reattachment point at the trailing edge of the stator, associated with vortex shedding from the lower side of the vane. The implication of this qualitative flow behavior on the method to extract computational fluid dynamics results for comparisons with experiments is discussed.
机译:在本研究中,对风车中高旁路比涡轮风扇的风扇级流动进行了数值研究。首先,在风扇级内和核心/旁路分流器附近的多个位置,针对详细的实验发动机测试台测量结果验证了稳定的混合平面模拟。对于风扇图中的全局工作点,在数值和实验结果之间取得了很好的一致性。对于所考虑的两个风车点,似乎随着飞行马赫数的减少,风车工作点移近了风扇的稳定性极限。对于径向轮廓,在转子的下游发现良好的一致性。在定子的下游,显示出稳定的方法无法重现流体的某些重要特征。提出了局部流动分析,证明了风车中流动的几个特征:在转子中,由于坚固性的影响,分离区域的尺寸从轮毂到尖端逐渐增大。在定子中,中跨出现大量的流分离,这导致形成两个沿流向的反向旋涡。然后,将非线性谐波方法应用于风扇级的一部分(相对跨度的70%)。进行了模态分析,显示了风车处的特定行为:转子和定子中大量分离的流动需要强的转子/定子相互作用模式。最后,检查了不稳定的流动模式:转子尾流的速度缺陷会周期性地增加定子上的流角,显示出它会在定子的后缘触发重新连接点的周期性运动,从而产生涡流脱落从叶片的下侧。讨论了这种定性流动行为对提取计算流体动力学结果的方法的影响,以便与实验进行比较。

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