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Design of passive directional acoustic devices using Topology Optimization - from method to experimental validation

机译:使用拓扑优化设计无源定向声学设备-从方法到实验验证

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The paper presents a topology optimization based method for designing acoustic focusing devices, capable of tailoring the sound emission pattern of one or several sources, across a chosen frequency band. The method is demonstrated numerically considering devices optimized for directional sound emission in two dimensions and is experimentally validated using three dimensional prints of the optimized designs. The emitted fields exhibit a level difference of at least 15 dB on axis relative to the off-axis directions, over frequency bands of approximately an octave. It is demonstrated to be possible to design focusing devices of dimensions comparable to the acoustic wavelength, a frequency range which is typically problematic, as well as devices operating at higher frequencies. The classical parabolic reflector is used as a benchmark. The devices designed using the proposed method are shown to outperform the latter in terms of directivity and maximum side-lobe level over nearly an octave band. A set of frequencies are considered simultaneously in the design formulation and performance robustness toward uniform spatial production errors in the designed devices is assured by including perturbations of the geometry in the design formulation. (C) 2016 Acoustical Society of America.
机译:本文提出了一种基于拓扑优化的方法,用于设计声聚焦设备,该方法能够在选定的频带上调整一个或多个声源的声发射模式。该方法在数值上考虑了针对二维定向声发射进行了优化的设备,并通过优化设计的三维印刷进行了实验验证。在大约八度的频带上,发射场相对于离轴方向在轴上显示出至少15 dB的电平差。已经证明可以设计尺寸与声波波长,通常是有问题的频率范围相当的聚焦装置,以及在更高频率下工作的装置。经典的抛物线反射镜被用作基准。使用拟议方法设计的器件在方向性和近一个八度频带上的最大旁瓣电平方面均优于后者。在设计公式中同时考虑了一组频率,并通过在设计公式中包括几何形状的扰动来确保对设计设备中均匀空间生产误差的性能鲁棒性。 (C)2016年美国声学学会。

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