通过实验室间阻抗管测量对可定制的3D打印混合声学材料(HAM)进行探索性声学研究

IF 1.3 Q3 ACOUSTICS Acoustics (Basel, Switzerland) Pub Date : 2023-07-13 DOI:10.3390/acoustics5030040
Vaia Tsiokou, L. Shtrepi, E. Badino, A. Astolfi, A. Karatza
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引用次数: 0

摘要

声学材料由于其吸声和扩声特性而被广泛应用于改善室内声学。然而,普通的声学材料只能提供有限的可定制的几何特征、性能和美学选择。本文重点研究了高度可定制的3d打印混合声材料(HAMs)的吸声性能,采用参数阶跃厚度,用于吸声和扩散。利用计算设计、3d打印技术和可调节孔隙度的原料,对ham进行了参数化设计和生产,通过与几何相关的吸声/扩散策略,实现了声学性能的先进控制。所提出的设计方法通过改变参数阶跃厚度为可定制的大规模累积声学性能铺平了道路。本研究探讨了在阻抗管中测试HAMs吸声性能所带来的挑战。测试样品(即圆柱截面)相对于原始(即矩形)面板样品的代表性受到各自阻抗管的几何特征(即圆柱截面)和尺寸要求(即直径尺寸)的上下文限制。为此,在两个独立的实验室用两种不同的阻抗管测试了10个样品的法向入射吸声,进行了实验室间的比较。得到的结果显示了良好的一致性,在较低的频率下,火腿的表现比预期的要好,表现得像亥姆霍兹吸收器,并且显示了与表面几何特征相关的频移模式。
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Exploratory Acoustic Investigation of Customizable 3D-Printed Hybrid Acoustic Materials (HAMs) through Interlaboratory Impedance Tube Measurements
Acoustic materials are widely used for improving interior acoustics based on their sound absorptive or sound diffusive properties. However, common acoustic materials only offer limited options for customizable geometrical features, performance, and aesthetics. This paper focuses on the sound absorption performance of highly customizable 3D-printed Hybrid Acoustic Materials (HAMs) by means of parametric stepped thickness, which is used for sound absorption and diffusion. HAMs were parametrically designed and produced using computational design, 3D-printing technology, and feedstock material with adjustable porosity, allowing for the advanced control of acoustic performance through geometry-related sound absorbing/diffusing strategies. The proposed design methodology paves the way to a customizable large-scale cumulative acoustic performance by varying the parametric stepped thickness. The present study explores the challenges posed by the testing of the sound absorption performance of HAMs in an impedance tube. The representativeness of the test samples (i.e., cylindrical sections) with respect to the original (i.e., rectangular) panel samples is contextually limited by the respective impedance tube’s geometrical features (i.e., cylindrical cross-section) and dimensional requirements (i.e., diameter size). To this aim, an interlaboratory comparison was carried out by testing the normal incidence sound absorption of ten samples in two independent laboratories with two different impedance tubes. The results obtained demonstrate a good level of agreement, with HAMs performing better at lower frequencies than expected and behaving like Helmholtz absorbers, as well as demonstrating a frequency shift pattern related to superficial geometric features.
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3.70
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审稿时长
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