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Mechanism and capability of ventilation openings for alleviating micro- pressure waves emitted from high-speed railway tunnels

机译:通风口缓解高速铁路隧道微压波的机理和能力

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摘要

Micro-pressure waves are a major environmental problem related to modem high-speed railway systems. The strength of this harmful noise is proportional to the amplitude of the compression wave gradient generated by a high-speed train entering a tunnel. Employing an accurate numerical method, the mechanism and effects of ventilation openings on these compression waves are parametrically investigated. The numerical results indicate that after installing an opening, the compression wave is principally developed as multiple series of wave families, and thus, the pressure gradient curve is formed by numerous peaks and troughs. The gradient peaks U-P0 and U-V0 are generated successively by the train nose entering the tunnel and passing over the opening, respectively, and dominate the maximum pressure gradient. The vent ratio of the opening can be optimized by balancing these two peaks. However, the vent location and train Mach number can significantly affect the optimizing and the aerodynamic behaviour of the optimized opening, which is attributed to wave superposition. Three original engineering equations are proposed for understanding the effects of the vent ratio, vent location and train Mach number on the gradient peaks, respectively, and the denoising capability of the opening is evaluated.
机译:微压波是与现代高速铁路系统有关的主要环境问题。这种有害噪声的强度与进入隧道的高速列车产生的压缩波梯度的幅度成比例。采用精确的数值方法,对通风孔对这些压缩波的作用机理和作用进行了参数研究。数值结果表明,在安装开口后,压缩波主要形成为多个波族系列,因此,压力梯度曲线由许多峰和谷形成。梯度峰U-P0和U-V0分别由火车机头进入隧道并越过开口依次产生,并控制最大压力梯度。可以通过平衡这两个峰值来优化开口的通风比。但是,出风口的位置和火车马赫数会显着影响优化的开口的优化和空气动力学行为,这归因于波浪的叠加。提出了三个原始的工程方程,分别用于理解通风比,通风位置和列车马赫数对梯度峰的影响,并对开口的去噪能力进行了评估。

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