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Using a 2.5D BE Model to Determine the Sound Pressure on the External Train Surface

机译:使用2.5D成为模型以确定外部列车表面上的声压

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In this paper, a wavenumber-domain boundary element (2.5D BE) approach is adopted to predict the transmission of noise from the wheels, the rails and the sleepers to the train external surfaces. In the 2.5D models, only the cross-section of the vehicle is created by using boundary elements, while the third direction is taken into account in terms of wavenumbers. After the sound pressure on the train cross-section is obtained, an inverse Fourier transform is applied to obtain the spatial distribution of the sound on the train surfaces. To validate this approach, the 2.5D boundary element method was used to predict the sound distribution on the train surfaces due to a point source below the vehicle, and due to the vibration of the track. The prediction of the sound distribution from the 2.5D method shows the sound pressure levels on the train floor are 20 dB higher than the pressure on the sides, and the pressure on the train roof caused by the sources below the vehicle is negligible. The 2.5D boundary element method was also used to predict the sound pressure spectrum on the train sides when the train was in running operation. Reasonable agreement was found with measurements.
机译:在本文中,采用波数域边界元(2.5D)方法来预测从车轮,轨道和枕垫到火车外表面的噪声传递。在2.5D模型中,仅使用边界元件创建车辆的横截面,而在波数方面考虑了第三方向。在获得列车横截面上的声压之后,施加逆傅里叶变换以获得火车表面上声音的空间分布。为了验证这种方法,使用2.5D边界元件方法来预测由于车辆下方的点源,并且由于轨道的振动而导致的火车表面上的声音分布。从2.5D方法中的声音分布的预测显示了火车楼层上的声压级高于侧面的压力高出20 dB,并且由车辆下方的源引起的火车屋顶上的压力可忽略不计。 2.5D边界元方法还用于预测火车运行运行时火车侧的声压谱。在测量结果中发现了合理的协议。

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