Acoustic Metamaterial With Air-Backed Diaphragm for Broadband Absorption: A Preliminary Study

Qian Dong, Xiaolei Song, Subhrodeep Ray, Haijun Liu
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Abstract

Membrane-based acoustic metamaterials have been reported to achieve 100% absorption, the acoustic analogue of photonic black-hole. However, the bandwidth is usually very narrow around some local resonance frequency, which limits its practical use. To address this limitation and achieve a broadband absorption, this paper first establishes a theoretical framework for unit cells of air-backed diaphragms, modeled as an equivalent mass-spring-dashpot system. Based on the impedance match principle, three different approaches are numerically investigated by tuning the cavity length, the static pressure in the cavity, and the effective damping of perforated plates. A prototype with polyimide diaphragm and 3D printed substrate is then fabricated and characterized using an acoustic impedance tube. Preliminary experiments show the feasibility to achieve an absorption bandwidth of ∼200 Hz at center frequency of 1.45 kHz. This work pays the way for developing a sub-wavelength light weight broadband acoustic absorber for a variety of applications in noise control.
据报道,基于膜的声学超材料可以实现100%的吸收,这是光子黑洞的声学模拟。然而,带宽通常在某些局部谐振频率附近非常窄,这限制了它的实际应用。为了解决这一限制并实现宽带吸收,本文首先建立了气背式隔膜单元的理论框架,建模为等效质量-弹簧-阻尼器系统。基于阻抗匹配原理,通过调整腔长、腔内静压和穿孔板的有效阻尼,对三种不同的方法进行了数值研究。然后用声阻抗管制造了一个带有聚酰亚胺膜片和3D打印基板的原型,并对其进行了表征。初步实验表明,在1.45 kHz的中心频率处实现~ 200 Hz的吸收带宽是可行的。这项工作为开发一种亚波长轻质宽带吸声器铺平了道路,该吸声器可用于各种噪声控制应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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