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用于可调宽带吸声的聚合物多层微穿孔板的3D打印

3D Printing of Polymeric Multi-Layer Micro-Perforated Panels for Tunable Wideband Sound Absorption.

作者信息

Yang Wenjing, Bai Xueyu, Zhu Wei, Kiran Raj, An Jia, Chua Chee Kai, Zhou Kun

机构信息

Singapore Center for 3D Printing, School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore.

Engineering Product Development Pillar, Singapore University of Technology and Design, 8 Somapah Rd, Singapore 487372, Singapore.

出版信息

Polymers (Basel). 2020 Feb 6;12(2):360. doi: 10.3390/polym12020360.

Abstract

The increasing concern about noise pollution has accelerated the development of acoustic absorption and damping devices. However, conventional subtractive manufacturing can only fabricate absorption devices with simple geometric shapes that are unable to achieve high absorption coefficients in wide frequency ranges. In this paper, novel multi-layer micro-perforated panels (MPPs) with tunable wideband absorption are designed and fabricated by 3D printing or additive manufacturing. Selective laser sintering (SLS), which is an advanced powder-based 3D printing technique, is newly introduced for MPP manufacturing with polyamide 12 as the feedstock. The acoustic performances of the MPPs are investigated by theoretical, numerical, and experimental methods. The results reveal that the absorption frequency bandwidths of the structures are wider than those of conventional single-layer MPPs, while the absorption coefficients remain comparable or even higher. The frequency ranges can be tuned by varying the air gap distances and the inter-layer distances. Furthermore, an optimization method is introduced for structural designs of MPPs with the most effective sound absorption performances in the target frequency ranges. This study reveals the potential of 3D printing to fabricate acoustic devices with effective tunable sound absorption behaviors and provides an optimization method for future structural design of the wideband sound absorption devices.

摘要

对噪声污染日益增长的关注加速了吸声和阻尼装置的发展。然而,传统的减材制造只能制造具有简单几何形状的吸声装置,这些装置无法在宽频率范围内实现高吸收系数。在本文中,通过3D打印或增材制造设计并制造了具有可调宽带吸收特性的新型多层微穿孔板(MPP)。选择性激光烧结(SLS)是一种先进的基于粉末的3D打印技术,本文首次将其引入以聚酰胺12为原料的MPP制造中。通过理论、数值和实验方法研究了MPP的声学性能。结果表明,该结构的吸收频率带宽比传统单层MPP的更宽,而吸收系数相当甚至更高。通过改变气隙距离和层间距离可以调节频率范围。此外,还介绍了一种优化方法,用于在目标频率范围内设计具有最有效吸声性能的MPP结构。本研究揭示了3D打印制造具有有效可调吸声行为的声学装置的潜力,并为宽带吸声装置的未来结构设计提供了一种优化方法。

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