Yang Xiaocui, Shen Xinmin, Bai Panfeng, He Xiaohui, Zhang Xiaonan, Li Zhizhong, Chen Liang, Yin Qin
Department of Mechanical Engineering, College of Field Engineering, Army Engineering University, No. 1 Haifu Street, Nanjing 210007, Jiangsu, China.
State Key Laboratory of Ultra-precision Machining Technology, Department of Industrial and Systems Engineering, The Hong Kong Polytechnic University, Kowloon 999077, Hong Kong, China.
Materials (Basel). 2019 Apr 30;12(9):1413. doi: 10.3390/ma12091413.
Increasing absorption efficiency and decreasing total thickness of the acoustic absorber is favorable to promote its practical application. Four compressed porous metals with compression ratios of 0%, 30%, 60%, and 90% were prepared to assemble the four-layer gradient compressed porous metals, which aimed to develop the acoustic absorber with high-efficiency and thin thickness. Through deriving structural parameters of thickness, porosity, and static flow resistivity for the compressed porous metals, theoretical models of sound absorption coefficients of the gradient compressed porous metals were constructed through transfer matrix method according to the Johnson-Champoux-Allard model. Sound absorption coefficients of four-layer gradient compressed porous metals with the different permutations were theoretically analyzed and experimentally measured, and the optimal average sound absorption coefficient of 60.33% in 100-6000 Hz was obtained with the total thickness of 11 mm. Sound absorption coefficients of the optimal gradient compressed porous metal were further compared with those of the simple superposed compressed porous metal, which proved that the former could obtain higher absorption efficiency with thinner thickness and fewer materials. These phenomena were explored by morphology characterizations. The developed high-efficiency and thin-thickness acoustic absorber of gradient compressed porous metal can be applied in acoustic environmental detection and industrial noise reduction.
提高吸声效率并减小吸声器的总厚度有利于促进其实际应用。制备了压缩比分别为0%、30%、60%和90%的四种压缩多孔金属,以组装四层梯度压缩多孔金属,旨在开发出高效且薄厚度的吸声器。通过推导压缩多孔金属的厚度、孔隙率和静态流动阻力等结构参数,根据Johnson-Champoux-Allard模型,采用传递矩阵法构建了梯度压缩多孔金属吸声系数的理论模型。对不同排列的四层梯度压缩多孔金属的吸声系数进行了理论分析和实验测量,在总厚度为11 mm时,获得了100 - 6000 Hz范围内最优平均吸声系数60.33%。将最优梯度压缩多孔金属的吸声系数与简单叠加压缩多孔金属的吸声系数进一步比较,结果表明前者能够以更薄的厚度和更少的材料获得更高的吸声效率。通过形貌表征对这些现象进行了探究。所开发的梯度压缩多孔金属高效薄厚度吸声器可应用于声学环境检测和工业降噪。