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首页> 外文期刊>Journal of Sound and Vibration >AEROACOUSTICAL STUDY OF THE TGV PANTOGRAPH RECESS
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AEROACOUSTICAL STUDY OF THE TGV PANTOGRAPH RECESS

机译:TGV缩放过程的航空声学研究

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The general focus of this aerodynamic noise research, induced by turbulent incompressible flow, is to improve our knowledge of acoustic production mechanisms in the TGV pantograph recess in order to be able to reduce the radiated noise. This work is performed under contract with SNCF as a part of the German-French Cooperation DEUFRAKO K2, and is supported by French Ministries for Transport and Research. Previous studies on TGV noise source locations (DEUFRAKO K) have identified the pantograph recess as one of the important aerodynamic noise sources, for speeds higher than 300 km/h, due to flow separation. The pantograph recess is a very complex rectangular cavity, located both on the power car and the first coach roofs of the TGV, and has not been studied before due to the complex shapes. Its aeroacoustic features are investigated experimentally in a low-subsonic wind tunnel, on a realistic 1/7th scale mock-up both with and without pantographs. Flow velocities, estimated with hot-wire anemometry, and parietal visualizations show the flow to reattach on the recess bottom wall and to separate again at the downstream face. Wall pressure fluctuations and "acoustic" measurements using 1/4 and 1/2in microphones respectively are also measured to qualify the flow: no aerodynamic or acoustic oscillations are observed. The study indicates that the pantograph recess has a different behaviour compared to the usual cavity grazing flows.
机译:由不可压缩的湍流引起的空气动力学噪声研究的总体重点是提高我们对TGV受电弓凹部中声学产生机理的了解,以便能够降低辐射噪声。这项工作是作为德国与法国合作DEUFRAKO K2计划的一部分与SNCF签订的,并得到法国运输和研究部的支持。先前对TGV噪声源位置(DEUFRAKO K)的研究已将受电弓凹部确定为重要的空气动力学噪声源之一,由于气流分离,其速度高于300 km / h。受电弓的凹槽是一个非常复杂的矩形空腔,位于电动汽车和TGV的第一个教练车顶上,由于形状复杂,以前没有进行过研究。在低亚音速风洞中,在有或没有受电弓的情况下,以逼真的1/7比例模型对它的空气声学特性进行了实验研究。用热线风速测定法测得的流速和顶面的可视化结果表明,流重新附着在凹槽底壁上,并在下游面再次分离。还测量了分别使用1/4和1/2英寸麦克风的壁压波动和“声学”测量值,以确认流量:未观察到空气动力学或声学振动。研究表明,受电弓的凹口与通常的空腔掠流相比具有不同的行为。

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