Qu Sichao, Gao Nan, Tinel Alain, Morvan Bruno, Romero-García Vicente, Groby Jean-Philippe, Sheng Ping
Department of Physics, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.
Laboratoire Ondes et Milieux Complexes UMR CNRS 6294, UNILEHAVRE, Normandie University, 75 Rue Bellot, 76600 Le Havre, France.
Sci Adv. 2022 May 20;8(20):eabm4206. doi: 10.1126/sciadv.abm4206. Epub 2022 May 18.
By using a structured tungsten-polyurethane composite that is impedance matched to water while simultaneously having a much slower longitudinal sound speed, we have theoretically designed and experimentally realized an underwater acoustic absorber exhibiting high absorption from 4 to 20 kHz, measured in a 5.6 m by 3.6 m water pool with the time-domain approach. The broadband functionality is achieved by optimally engineering the distribution of the Fabry-Perot resonances, based on an integration scheme, to attain impedance matching over a broad frequency range. The average thickness of the integrated absorber, 8.9 mm, is in the deep subwavelength regime (~λ/42 at 4 kHz) and close to the causal minimum thickness of 8.2 mm that is evaluated from the simulated absorption spectrum. The structured composite represents a new type of acoustic metamaterials that has high acoustic energy density and promises broad underwater applications.
通过使用一种结构化的钨-聚氨酯复合材料,该材料与水实现了阻抗匹配,同时纵向声速要慢得多,我们从理论上进行了设计,并通过实验实现了一种水下吸声器,在一个5.6米×3.6米的水池中采用时域方法测量,该吸声器在4至20千赫兹范围内表现出高吸收性能。基于一种集成方案,通过优化法布里-珀罗共振的分布来实现宽带功能,从而在宽频率范围内实现阻抗匹配。集成吸声器的平均厚度为8.9毫米,处于深亚波长范围(4千赫兹时约为λ/42),并且接近从模拟吸收光谱评估得出的8.2毫米的因果最小厚度。这种结构化复合材料代表了一种新型声学超材料,具有高声能密度,并有望在水下得到广泛应用。