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Optimal rigid and porous material distributions for noise barrier by acoustic topology optimization

机译:通过声学拓扑优化来优化隔音屏障的刚性和多孔材料分布

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This research applies acoustic topology optimization (ATO) for noise barrier design with rigid and porous materials. Many researchers have investigated the pressure attenuation phenomena of noise barriers under various geometric, material, and boundary conditions. To improve the pressure attenuation performance of noise barriers, size and shape optimization have been applied, and ATO methods have been proposed that allow concurrent size, shape, and topological changes of rigid walls and cavities. Nevertheless, it is unusual to optimize the topologies of noise barriers by considering the pressure attenuation effect of a porous material. The present research develops a new ATO considering both porous and rigid materials and applies it to the discovery of optimal topologies of noise barriers composed of both materials. In the present approach, the noise absorption characteristics of porous materials are numerically modeled using the Delany-Bazley empirical material model, and WC also investigate the effects of some interpolation functions on optimal material distributions. Applying the present ATO approach, we found some novel noise barriers optimized for various geometric and environmental conditions. (C) 2014 Elsevier Ltd. All rights reserved.
机译:这项研究将声学拓扑优化(ATO)应用到具有刚性和多孔材料的噪声屏障设计中。许多研究人员研究了在各种几何,材料和边界条件下隔音屏障的压力衰减现象。为了提高隔音屏障的压力衰减性能,已应用尺寸和形状优化,并且提出了ATO方法,该方法允许同时进行尺寸,形状和刚性壁和空腔的拓扑变化。然而,通过考虑多孔材料的压力衰减效应来优化隔音屏障的拓扑结构是不寻常的。本研究开发了一种同时考虑多孔和刚性材料的新型ATO,并将其应用于发现由两种材料组成的隔音屏障的最佳拓扑。在本方法中,使用Delany-Bazley经验材料模型对多孔材料的噪声吸收特性进行了数值建模,并且WC还研究了一些插值函数对最佳材料分布的影响。应用当前的ATO方法,我们发现了一些针对各种几何和环境条件进行了优化的新型噪声屏障。 (C)2014 Elsevier Ltd.保留所有权利。

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