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Integration of the efficiency of noise barrier caps in a 3D ray tracing method. Case of a T-shaped diffracting device

机译:在3D射线追踪方法中集成了隔音罩帽的效率。 T形衍射装置的壳体

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摘要

Road barrier diffracting caps have shown a renewed interest for several years since they give the opportunity of increasing the barrier efficiency without changing its overall height. First investigations on the efficiency of road barrier caps calculated with a boundary element method (BEM) have shown that the efficiency obtained with coherent line sources is underestimated compared to that with incoherent line sources, more representative of road traffic noise. The present work deals with the characterisation of the real performance of a T-shaped absorbing cap with road traffic noise conditions. Two different approaches are compared: on one hand calculations with the help of a BEM program able to achieve 2D and 2D(1/2) simulations are made; on the other hand outdoor measurements on a test-wall using a maximum length sequence technique are carried out. The goal in the two approaches is to isolate the top edge diffracted sound field in order to determine an extrinsic value of octave band efficiency of the cap for many source-receiver pairs. These results integrated in a ray tracing prediction method enable the integration of air absorption along each ray path and give the real efficiency of such a device in the case of complex and realistic configurations for barriers of finite length.
机译:道路障碍物衍射帽已经表现出了新的兴趣,因为它们提供了在不改变其整体高度的情况下提高障碍物效率的机会。对使用边界元方法(BEM)计算的道路障碍物封盖效率的首次研究表明,相干线源获得的效率与非相干线源相比被低估了,更能代表道路交通噪声。本工作着眼于在道路交通噪声情况下表征T形吸收帽的真实性能。比较了两种不同的方法:一方面,借助能够实现2D和2D(1/2)模拟的BEM程序进行计算;另一方面,使用最大长度序列技术在测试墙上进行室外测量。两种方法的目标是隔离顶部边缘衍射声场,以便确定许多源-接收器对的电容帽倍频频带效率的外在值。集成在光线跟踪预测方法中的这些结果可以整合沿每个光线路径的空气吸收,并在有限长度的障碍物的复杂且实际配置的情况下,给出这种设备的实际效率。

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