Experimental study on the mode switching of strong-amplitude tones in slat noise

IF 2.3 3区 工程技术 Q2 ENGINEERING, MECHANICAL Experiments in Fluids Pub Date : 2025-01-12 DOI:10.1007/s00348-025-03956-8
Renke Wei, Yu Liu
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Abstract

For the strong-amplitude tonal noise from a slat cove, the mechanisms of mode switching phenomenon are not well understood. In this paper, an experimental study was conducted on the slat noise of a 30P30N three-element airfoil through synchronized measurements of a far-field microphone array, wall-pressure transducers, and a hot-wire anemometry. In-house wall-pressure microphones were developed, based on MEMS microphones and flexible printed circuit board, and attached to the curved surface of the slat to measure the wall-pressure fluctuations. The time-frequency analysis through the continuous wavelet transform demonstrated that the synchronous measurements captured the temporal switching of dominant mode in slat noise and the intermittent vortex structures corresponding to the dominant mode frequency in the flow field. The dominant mode in the time-averaged spectra of far-field noise and wall-pressure fluctuations arises from the competition of strong amplitude over time between the primary modes. The time-frequency analysis based on wall-pressure microphones at different spanwise positions revealed a temporal variation of the dominant mode along the slat span. The spanwise coherence analysis indicated that the dominant mode showing stronger coherence has a longer spanwise correlation length compared to other secondary modes.

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板条噪声中强振幅音模式切换的实验研究
对于板状凹腔的强振幅调性噪声,其模态转换机制尚不清楚。本文通过远场传声器阵列、壁面压力传感器和热线风速仪的同步测量,对30P30N三元翼型的狭缝噪声进行了实验研究。在MEMS传声器和柔性印刷电路板的基础上,研制了室内壁压传声器,并将其安装在板条的曲面上测量壁压波动。通过连续小波变换进行时频分析表明,同步测量捕捉到了板条噪声中主导模态的时间切换和流场中主导模态频率对应的间歇涡结构。远场噪声和壁压波动的时间平均谱中的主导模态是由主模态之间的强振幅随时间的竞争产生的。基于不同跨向位置壁压传声器的时频分析表明,沿板条跨方向的优势模态存在时间变化。跨向相干分析表明,与其他次模相比,相干性较强的主导模具有较长的跨向相关长度。
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来源期刊
Experiments in Fluids
Experiments in Fluids 工程技术-工程:机械
CiteScore
5.10
自引率
12.50%
发文量
157
审稿时长
3.8 months
期刊介绍: Experiments in Fluids examines the advancement, extension, and improvement of new techniques of flow measurement. The journal also publishes contributions that employ existing experimental techniques to gain an understanding of the underlying flow physics in the areas of turbulence, aerodynamics, hydrodynamics, convective heat transfer, combustion, turbomachinery, multi-phase flows, and chemical, biological and geological flows. In addition, readers will find papers that report on investigations combining experimental and analytical/numerical approaches.
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