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Graded and Anisotropic Porous Materials for Broadband and Angular Maximal Acoustic Absorption

机译:用于宽带和角度最大声学吸收的分级和各向异性多孔材料

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摘要

The design of graded and anisotropic materials has been of significant interest, especially for sound absorption purposes. Together with the rise of additive manufacturing techniques, new possibilities are emerging from engineered porous micro-structures. In this work, we present a theoretical and numerical study of graded and anisotropic porous materials, for optimal broadband and angular absorption. Through a parametric study, the effective acoustic and geometric parameters of homogenized anisotropic unit cells constitute a database in which the optimal anisotropic and graded material will be searched for. We develop an optimization technique based on the simplex method that is relying on this database. The concepts of average absorption and diffuse field absorption coefficients are introduced and used to maximize angular acoustic absorption. Numerical results present the optimized absorption of the designed anisotropic and graded porous materials for different acoustic targets. The designed materials have anisotropic and graded effective properties, which enhance its sound absorption capabilities. While the anisotropy largely enhances the diffuse field absorbing when optimized at a single frequency, graded properties appear to be crucial for optimal broadband diffuse field absorption.
机译:分级和各向异性材料的设计具有重要兴趣,特别是对于吸收目的。随着添加剂制造技术的兴起,新的可能性来自工程化多孔微结构。在这项工作中,我们提供了渐变和各向异性多孔材料的理论和数值研究,用于最佳宽带和角度吸收。通过参数研究,均质各向异性各向异性单元电池的有效声学和几何参数构成了一个数据库,其中将搜索最佳的各向异性和分级材料。我们通过依赖于此数据库的单纯x方法开发优化技术。引入平均吸收和漫射场吸收系数的概念并用于最大化角度声学吸收。数值结果呈现了不同声学靶标的设计各向异性和分级多孔材料的优化吸收。设计的材料具有各向异性和渐进的有效性能,可增强其吸声能力。虽然各向异性在很大程度上增强了在单个频率优化时的漫射场吸收的虽然,渐变特性对于最佳宽带漫射场吸收似乎是至关重要的。

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