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Numerical prediction of aerodynamic noise from impeller blowers of straw threshing machines

机译:秸秆脱粒机叶轮鼓风机空气动力学噪声的数值预测

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An impeller blower is one of the major aerodynamic noise sources in straw threshing machines. To reduce its aerodynamic noise, it is essential to understand the mechanism of gas-material-coupled unsteady flow causing aerodynamic noise. However, it is difficult to clarify the mechanism through measurement. Therefore, the following topics are studied in this article. First, a full-field transient numerical simulation of the gas and solid particulates' unsteady flow inside the impeller blower was carried out using a dense discrete phase model and a large eddy simulation turbulence model. Second, based on the Ffowcs Williams-Hawkins equation, the aerodynamic noise of the impeller blower of the straw threshing machines was numerically calculated. Finally, the numerical results were verified by aerodynamic noise test. The results indicate that (I) sound pressure level at the inlet of the impeller blower is the highest, mainly at 100 Hz, which is the fundamental frequency of the rotating impeller, while the sound pressure level at the fourth harmonic frequency of 400 Hz is the main source of the outlet. The total sound pressure level at the inlet is greater than that at the outlet. It is concluded that the dipole source of the rotating impeller is the main noise source, which was generated by the interaction of blade with the air and material as the impeller rotated. Also, acoustic attenuation, acoustic resonance, and impact noise of material and machinery play important roles in aerodynamic noise distribution. (2) The test and simulation results show good agreement, so the numerical model of aerodynamic noise is reliable. This study will provide a reference for the structural and acoustic optimization design of impeller blowers and their integration into threshing machines.
机译:叶轮鼓风机是秸秆脱粒机中的主要空气动力噪声之一。为了降低其空气动力学噪声,必须了解导致空气动力学噪声的气体材料耦合的不稳定流动的机制。但是,难以通过测量来阐明机制。因此,本文研究了以下主题。首先,使用致密的离散相模型和大涡模拟湍流模型进行叶轮鼓风机内部气体和固体微粒的全场瞬态数值模拟。其次,基于FFOWCS Williams-Hawkins方程,秸秆脱粒机的叶轮鼓风机的空气动力噪声在数值上计算。最后,通过空气动力学噪声测试验证了数值结果。结果表明,叶轮鼓风机入口处的声压水平最高,主要是100 Hz,这是旋转叶轮的基频,而400Hz的第四次谐波频率的声压水平是出口的主要来源。入口处的总声压水平大于出口处的总声压水平。结论是旋转叶轮的偶极源是主要噪声源,其通过叶片旋转时叶片与空气和材料的相互作用产生。此外,物质和机械的声学衰减,声学谐振和冲击噪声在空气动力学噪声分布中起重要作用。 (2)测试和仿真结果表明良好的一致性,因此空气动力学噪声的数值模型可靠。本研究将为叶轮鼓风机的结构和声学优化设计提供参考及其在脱粒机中的集成。

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