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Numerical investigation on an array of Helmholtz resonators for the reduction of micro-pressure waves in modern and future high-speed rail tunnel systems

机译:现代和未来高速铁路隧道系统中用于减少微压力波的亥姆霍兹共振器阵列的数值研究

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摘要

Previous research has proposed that an array of Helmholtz resonators may be an effective method for suppressing the propagation of pressure and sound waves, generated by a high-speed train entering and moving in a tunnel. The array can be used to counteract environmental noise from tunnel portals and also the emergence of a shock wave in the tunnel. The implementation of an array of Helmholtz resonators in current and future high-speed train-tunnel systems is studied. Wave propagation in the tunnel is modelled using a quasi-one-dimensional formulation, accounting for non-linear effects, wall friction and the diffusivity of sound. A multi-objective genetic algorithm is then used to optimise the design of the array, subject to the geometric constraints of a demonstrative tunnel system and the incident wavefront in order to attenuate the propagation of pressure waves. It is shown that an array of Helmholtz resonators can be an effective countermeasure for various tunnel lengths. In addition, the array can be designed to function effectively over a wide operating envelope, ensuring it will still function effectively as train speeds increase into the future.
机译:先前的研究已经提出,亥姆霍兹共振器阵列可能是抑制压力和声波传播的有效方法,该压力和声波是由高速列车进入隧道并在隧道中移动而产生的。该阵列可用于抵消来自隧道入口的环境噪声以及隧道中冲击波的出现。研究了当前和未来的高速列车隧道系统中亥姆霍兹谐振器阵列的实现。隧道中的波传播是使用准一维公式建模的,其中考虑了非线性效应,壁摩擦和声音的扩散性。然后,使用多目标遗传算法优化阵列的设计,以适应示范性隧道系统和入射波阵面的几何约束,从而减弱压力波的传播。结果表明,亥姆霍兹谐振器阵列可以有效地应对各种不同的隧道长度。此外,该阵列可以设计为在较宽的运行范围内有效运行,确保在将来火车速度提高时仍能有效运行。

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