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Performance and inter-blade flow of axial flow fans with different blade angles of attack

机译:不同叶片迎角的轴流风机的性能和叶片间流量

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The predictions of fan performance on the pressure and flow rate characteristics of the axial flow fans using the conventional computational flow dynamics (CFD) approaches generally show a large deviation of about 20-30% from the experimental results. This article modifies the conventional CFD approaches by engaging the flow resistance of the fan test bench on the downstream area of the computational domain. The downstream pressure and flow rate are adjusted iteratively during the computational process. The results show that the prediction deviations using this method can be reduced to at most 3%, which is a great improvement compared to the conventional method. The inter-blade flows of three axial flow fans with different blade angles of attack are subsequently studied using this method. The results show that the flow patterns are drastically sensitive to the variation of the blade angle of attack, and the fan performances are closely related to the inter-blade flow behaviors. In the pre-stall regime, inappropriately designed blade angle of attack would cause the inter-blade flows in the region near the blade tip and the flows in the tip clearance region to present larger lateral and smaller axial velocity components with recirculation bubbles near the blade trailing edges. These flow behaviors cause the degradation of the fan performance. In the stall regime, boundary layer separation occurs to the suction surface of fan blades. Large recirculation bubbles appear near the trailing edges of blades and cause blockage effect against the axial flows. For the fans with inappropriately designed blade angle of attack, reverse flows can even be observed in the inter-blade passages with huge recirculation bubbles attaching to the trailing edges of fan blades.
机译:使用常规计算流动力学(CFD)方法对轴流风扇的压力和流量特性进行的风扇性能预测通常显示出与实验结果相差约20-30%。本文通过在计算域的下游区域使用风扇测试台的流阻来修改常规CFD方法。在计算过程中,下游压力和流速会进行迭代调整。结果表明,使用该方法的预测偏差可以减少到最多3%,与常规方法相比有很大的改进。随后使用此方法研究了具有不同叶片迎角的三个轴流风扇的叶片间流动。结果表明,流动模式对叶片迎角的变化非常敏感,而风扇性能与叶片间流动行为密切相关。在失速前状态下,叶片的攻角设计不当会导致叶片间的流动在叶片尖端附近的区域内以及尖端间隙区域内的流动呈现较大的横向和较小的轴向速度分量,并在叶片附近产生再循环气泡后缘。这些流动行为导致风扇性能下降。在失速状态下,边界层分离发生在风扇叶片的吸入表面。大的再循环气泡出现在叶片的后缘附近,并导致对轴向流的阻塞作用。对于叶片迎角设计不当的风扇,甚至可以在叶片间通道中观察到逆向流动,而在叶片间通道中,巨大的再循环气泡附着在风扇叶片的后缘。

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