首页> 外文会议>ASME Fluids Engineering Division summer meeting >EFFECT OF ROTOR-STATOR CONFIGURATION IN THE GENERATION OF VORTICAL SCALES AND WAKE MIXING IN SINGLE STAGE AXIAL FANS. PART Ⅰ: LES MODELLING AND EXPERIMENTAL VALIDATION
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EFFECT OF ROTOR-STATOR CONFIGURATION IN THE GENERATION OF VORTICAL SCALES AND WAKE MIXING IN SINGLE STAGE AXIAL FANS. PART Ⅰ: LES MODELLING AND EXPERIMENTAL VALIDATION

机译:单级轴流风机中静子定子形状和尾流混合的产生中定子结构的影响。第一部分:LES建模和实验验证

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The unsteadiness and vortical structures associated to impinging wakes convected through rotor and stator passages have been studied in detail in a single-stage low-speed axial fan, with 9 blades and 13 inlet/outlet guide vanes. In particular, in this first part, the effect of complementary rotor-stator (RS) and stator-rotor (SR) configurations has been addressed in terms of wake mixing and generation of vortical structures in both absolute and relative frames of reference. A LES simulation of the midspan section (in a 2.5D model) is introduced to resolved the largest scales of the vortical motion within the wakes, related to vortex shedding, especially at off-design conditions. Chopping mechanisms and periodic interactions of the coherent turbulent structures are described and the presence of turbulent spots due to wake-wake interactions is revealed. Another relevant flow pattern, like the advection of leading edge separation through the downstream passage, is also identified and linked to the periodic potential interaction of upstream vanes (SR) or blades (RS). Additionally, complete experimental databases of the time-resolved and the turbulent scales of the flow are available for both configurations by means of hot-wire anemometry measurements. Wake transport and viscous mixing are identified in corresponding measuring windows, and primary flow structures at midspan are also recovered and compared with the numerical results for validation. From the comparison of experimental and numerical results it can be concluded that the numerical modeling is able to reproduce accurately the unsteady phenomena that occur inside the axial fan, and shows the potentiality of LES techniques to resolve with high fidelity the main turbulent structures present in the flow, especially at off-design flow rates.
机译:在具有9个叶片和13个进出口导叶的单级低速轴流风机中,已经详细研究了与通过转子和定子通道对流的冲击尾流相关的不稳定和涡旋结构。特别地,在该第一部分中,已经在绝对和相对参考系中从尾流混合和涡旋结构的产生方面解决了互补的转子-定子(RS)和定子-转子(SR)构造的影响。引入了中跨截面的LES模拟(在2.5D模型中),以解决尾流内与旋涡脱落有关的最大旋涡运动,尤其是在非设计条件下。描述了相干湍流结构的斩波机理和周期性相互作用,并揭示了由于尾流-尾流相互作用而引起的湍流斑的存在。还确定了另一种相关的流动模式,例如通过下游通道的前缘分离的平流,并将其与上游叶片(SR)或叶片(RS)的周期性电势相互作用联系起来。此外,借助热线风速测量,可为两种配置提供完整的时间分辨实验数据库和流动湍流尺度的数据库。在相应的测量窗口中识别了尾流传输和粘性混合,还恢复了中跨的主要流动结构,并将其与数值结果进行比较以进行验证。从实验和数值结果的比较可以得出结论,数值模型能够准确地再现轴流风机内部发生的非稳态现象,并显示出LES技术以高保真度解决存在于轴流风机中的主要湍流结构的潜力。流量,特别是在非设计流量下。

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