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Fabrication and Characterization of 3D Printed Thin Plates for Acoustic Metamaterials Applications

机译:声学超材料应用中3D打印薄板的制造与表征

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摘要

This paper presents a 3D printing technique based on stereolithography and direct light processing for the fabrication of low resonance frequency thin plates suitable for acoustic metamaterials applications. It was possible to achieve a better resolution with respect to other 3D printing methods such as fusion deposition modeling and to obtain plates with a thickness of 70 mu m. The plates were characterized using three different methods: laser Doppler vibrometer supported by modal analysis, impedance tube measurements backed by a transfer matrix model and nanoindentation. All results are in good agreement. The physical parameters retrieved through the characterization methods can be used for future designs and integrated into finite element analysis to better predict the noise impact of these materials. Thanks to the small radius and thickness of the plates presented in this paper and to their low resonance frequency, it is suggested that they could be arranged in various configurations and used as unit cells in acoustic metamaterials applications for noise attenuation in small-scale electroacoustic devices.
机译:本文提出了一种基于立体光刻和直接光处理的3D打印技术,用于制造适用于声学超材料的低共振频率薄板。相对于其他3D打印方法(如熔融沉积建模),可以获得更好的分辨率,并且可以获得厚度为70微米的印版。使用三种不同的方法对板进行了表征:模态分析支持的激光多普勒振动计,传输矩阵模型支持的阻抗管测量和纳米压痕。所有结果均吻合良好。通过表征方法获得的物理参数可用于将来的设计,并集成到有限元分析中,以更好地预测这些材料的噪声影响。由于本文介绍的板的半径和厚度小以及共振频率低,因此建议将它们布置成各种配置,并用作声学超材料应用中的单元,以减小小型电声设备中的噪声。

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