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Computational study for noise reduction and characteristic of unsteady flow field/flow-induced noise generated in a small radial fan

机译:在小径向风扇中产生非定常流场/流动诱导噪声的降噪和特性的计算研究

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This study is an attempt to characterize unsteady flow field and predict flow noise produced by a radial fan installed in a system that has a tiny gap between the fan casing and upper wall (similar conditions found in actual products). The large-eddy simulation turbulence model was used to simulate unsteady flow conditions, and an impeller was rotated 13 times in total to sufficiently develop unsteady flow and obtain data for Computational aeroacoustics (CAA). Unsteady flow field due to the radial fan structure and narrow flow channel in a system was verified, and a location wherein flow properties rapidly changed over time due to the complicated flow field was identified. The noise spectrum obtained through CAA was compared with that measured through experiment. Both tonal noise components consisting of blade passing frequency with its harmonic frequencies and broadband noise were matched. The major source of noise of the radial fan was on the inner surface of the casing. However, the sources of noise in the upper and lower sides of the casing were not equivalent to each other due to the interaction between the flow coming through an inlet located in the upper part of the casing and the flow discharged through an outlet installed at its side, as well as the interaction between impeller rotation and cut-off. Sources of noise located at the upper casing are caused by the flow around impeller tips, whereas sources on the lower casing are related to the interaction of the flow between the impeller and casing. A low noise model with a modified impeller tip was proposed, and its noise reducing effects were evaluated. The modified model reduced overall sound pressure level by 0.8 dB compared with the base model.
机译:该研究是一种尝试表征不稳定的流场,并预测由安装在风扇壳体和上墙上具有微小间隙的系统中的径向风扇产生的流动噪声(实际产品中的类似条件)。大涡仿真湍流模型用于模拟不稳定的流动条件,叶轮总共旋转13次以充分发育不稳定的流量并获得计算空气声学(CAA)的数据。验证了由于径向风扇结构和系统中的窄流动通道引起的不稳定流场,并且识别出由于复杂的流场而随时间随时间迅速变化的流动性的位置。将通过CAA获得的噪声谱与通过实验测量的噪声谱进行比较。匹配由叶片传递频率和宽带噪声组成的色调噪声分量。径向风扇的主要噪声来源位于壳体的内表面上。然而,由于通过位于壳体的上部的进口之间的进口之间的流动之间的相互作用,壳体的上部和下侧和下侧的噪声源不等于彼此相等,并且通过安装在其上的出口排出的流量侧面,以及叶轮旋转和截止之间的相互作用。位于上壳体处的噪声源是由叶轮尖端的流动引起的,而下壳体上的源与叶轮和壳体之间的流动的相互作用有关。提出了一种具有改进的叶轮尖端的低噪声模型,并评估其降噪效果。与基础模型相比,改进的模型将整体声压级减少0.8 dB。

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