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Shape optimization of solid-air porous phononic crystal slabs with widest full 3D bandgap for in-plane acoustic waves

机译:具有最宽全3D带隙的面内声波固体空气多孔声子晶体平板的形状优化

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摘要

The use of Phononic Crystals (PnCs) as smart materials in structures and microstructures is growing due to their tunable dynamical properties and to the wide range of possible applications. PnCs are periodic structures that exhibit elastic wave scattering for a certain band of frequencies (called bandgap), depending on the geometric and material properties of the fundamental unit cell of the crystal. PnCs slabs can be represented by plane-extruded structures composed of a single material with periodic perforations. Such a configuration is very interesting, especially in Micro Electro-Mechanical Systems industry, due to the easy fabrication procedure. A lot of topologies can be found in the literature for PnCs with square-symmetric unit cell that exhibit complete 2D bandgaps; however, due to the application demand, it is desirable to find the best topologies in order to guarantee full bandgaps referred to in-plane wave propagation in the complete 3D structure. In this work, by means of a novel and fast implementation of the Bidirectional Evolutionary Structural Optimization technique, shape optimization is conducted on the hole shape obtaining several topologies, also with non-square-symmetric unit cell, endowed with complete 3D full bandgaps for in-plane waves. Model order reduction technique is adopted to reduce the computational time in the wave dispersion analysis. The 3D features of the PnC unit cell endowed with the widest full bandgap are then completely analyzed, paying attention to engineering design issues.
机译:声子晶体(PnCs)在结构和微结构中作为智能材料的用途由于其可调的动态特性以及广泛的可能应用而在不断增长。 PnC是周期性结构,根据晶体的基本晶胞的几何和材料特性,它们会在一定的频带(称为带隙)中表现出弹性波散射。 PnC平板可以用由具有周期性穿孔的单一材料组成的平面挤压结构表示。由于容易的制造过程,这种配置是非常令人感兴趣的,特别是在微机电系统工业中。对于具有方形对称晶胞的PnC,在文献中可以找到很多拓扑,这些拓扑显示出完整的2D带隙。但是,由于应用需求,希望找到最佳的拓扑结构,以确保在完整的3D结构中参考平面波传播的完整带隙。在这项工作中,通过双向进化结构优化技术的新颖,快速实现,对孔的形状进行了形状优化,从而获得了几种拓扑结构,以及非正方形对称的晶胞,并为其提供了完整的3D全带隙。平面波。采用模型降阶技术减少了波色散分析的计算时间。然后完全分析了具有最大全带隙的PnC晶胞的3D特征,并注意工程设计问题。

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