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首页> 外文期刊>Journal of Sound and Vibration >Structure-borne noise of railway composite bridge: Numerical simulation and experimental validation
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Structure-borne noise of railway composite bridge: Numerical simulation and experimental validation

机译:铁路复合桥的结构声噪声:数值模拟和实验验证

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In order to investigate the characteristics of the noise from steel-concrete composite bridges under high-speed train loading, a model used to predict the bridge-borne noise is established and validated through a field experiment. The numerical model for noise prediction is developed based on the combination of spatial train-track-bridge coupled vibration theory and Statistical Energy Analysis (SEA). Firstly, train-track-bridge coupled vibration is adopted to obtain the velocity time history of the bridge deck vibration. Then, the velocity time history is transferred into frequency domain through FFT to serve as the vibratory energy of SEA deck subsystems. Finally, the transmission of the vibratory energy is obtained by solving the energy balance equations of SEA, and the sound radiation is computed using the vibro-acoustic theory. The numerically computed noise level is verified by a field measurement. It is determined that the dominant frequency of steel-concrete composite bridge-borne noise is 20-1000 Hz. The noise from the bottom flange of steel longitudinal girder is less than other components in the whole frequency bands, while the noise from web of steel longitudinal girder is dominant in high frequency range above 315 Hz. The noise from concrete deck dominates in low-frequency domain ranges from 80 Hz to 160 Hz. (C) 2015 Elsevier Ltd. All rights reserved.
机译:为了研究高速列车荷载作用下钢混凝土组合桥的噪声特征,建立了用于预测桥基噪声的模型,并通过现场试验对其进行了验证。基于空间列车-轨道-桥梁耦合振动理论和统计能量分析(SEA)的结合,建立了噪声预测的数值模型。首先,采用列车-轨道-桥梁耦合振动来获得桥面振动的速度时程。然后,速度时程通过FFT传递到频域中,作为SEA平台子系统的振动能量。最后,通过求解SEA的能量平衡方程获得振动能量的传递,并使用振动声学理论计算声辐射。数值计算的噪声水平通过现场测量得到验证。可以确定,钢混混凝土桥梁噪声的主频为20-1000 Hz。在整个频段上,钢制纵梁底部法兰的噪声要小于其他分量,而钢制纵梁腹板的噪声在315 Hz以上的高频范围内占主导地位。混凝土甲板的噪声在80 Hz至160 Hz的低频范围内占主导地位。 (C)2015 Elsevier Ltd.保留所有权利。

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