Chen Victor, Perez Pablos Ignacio, Chen Jer-Ming
RDD Research, Dyson Technology Ltd., Malmesbury, United Kingdom.
Science, Maths and Technology (SMT), Singapore University of Technology and Design, Singapore, Singapore.
J Acoust Soc Am. 2023 Jan;153(1):40. doi: 10.1121/10.0016811.
Nanofiber-porous systems comprising a porous substrate overlaid with nanofiber weave offer the potential for higher acoustic absorption than the substrate alone with negligible increase in thickness. The characterization of nanofibers from acoustic measurements is investigated in this work, and a regression model for predicting their acoustic properties from a single physical parameter is proposed to enable the design of nanofiber-porous systems directly from fabrication parameters. Characterization as a resistive screen via Johnson-Champoux-Allard and lumped element models for transfer matrix computations of absorption coefficient for nanofiber-porous systems exhibited good agreement with the measured spectra. The lumped element model was chosen as it was defined by fewer parameters and did not require nanofiber layer thickness measurements, eliminating the associated uncertainty. A regression model for lumped element parameters vs areal density established a design tool based on a single, easily measured physical property for optimized absorption at target frequencies without prior acoustic characterization of the nanofiber layer, enabling the analysis of complex acoustic networks incorporating nanofiber-porous systems. Practical considerations of applying adhesives at the nanofiber-porous interface were studied to evaluate possible enhancement of acoustic performance. For comparison with prior work by others, flow resistances from physical measurement and acoustic characterization were compared.
由覆盖有纳米纤维织物的多孔基材组成的纳米纤维 - 多孔系统具有比单独的基材更高的吸声潜力,而厚度增加可忽略不计。本文研究了通过声学测量对纳米纤维进行表征,并提出了一种从单个物理参数预测其声学特性的回归模型,以便能够直接根据制造参数设计纳米纤维 - 多孔系统。通过Johnson - Champoux - Allard模型和集总元件模型将纳米纤维 - 多孔系统表征为电阻屏,用于传输矩阵计算吸收系数,与测量光谱显示出良好的一致性。选择集总元件模型是因为它由较少的参数定义,并且不需要测量纳米纤维层厚度,消除了相关的不确定性。集总元件参数与面密度的回归模型建立了一种基于单一、易于测量的物理性质的设计工具,用于在目标频率下实现优化吸收,而无需事先对纳米纤维层进行声学表征,从而能够分析包含纳米纤维 - 多孔系统的复杂声学网络。研究了在纳米纤维 - 多孔界面施加粘合剂的实际考虑因素,以评估声学性能可能的增强。为了与其他人之前的工作进行比较,比较了物理测量和声学表征得到的流阻。