Shuwei Ren , Wei Sun , Zijian Zhao , Yiyang Liu , Qian Wang , Fei Che , Haitao Wang , Ye Lei , Xiangyang Zeng
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引用次数: 0
Abstract
This study proposes a class of absorbers comprising a water-saturated porous meta-material and a metallic chamber for low-frequency underwater sound absorption. A conventional type, cylindrical water-saturated sintered fiber metal (SFM) composites with metallic chamber (CWSFMMC) is selected as a starting point and extensively studied through theoretical analyses, numerical simulations, and experimental measurements, showing outstanding absorption capabilities for underwater sound waves across a broad range of hydrostatic pressures to clarify the absorption mechanism of water-saturated porous material with a metallic chamber. Then, employing the criterion of an equivalent hydraulic radius, a geometric gradient corrugated-core-like channel is utilized to coil the single-layer water-saturated SFM, thus creating a water-saturated porous meta-material. This process establishes an innovative, optimized type of geometric gradient space-coiling porous underwater sound-absorbing metamaterial (GGSPM) through a combined theoretical approach with the impedance-transfer method, Biot’s theory, and the SO algorithm. In addition, numerical simulation results indicated that the GGSPM achieves robust underwater sound absorption within a sub-wavelength regime (∼/27 at 1480 Hz), mutually confirming the theoretical analysis. Furthermore, the performance under oblique incident waves (elevation angle and azimuth angle ) and the influence of material-related parameters (porosity and fiber diameter ) and gradient-specific acoustic impedance characteristics-related parameters (numbers of channels , , and ) are explored, showing significant potential for the development of next-generation high-performance underwater sound-absorption materials.
本研究提出了一类由饱和水多孔超材料和金属腔组成的低频水声吸收器。本文以传统的圆柱形饱和水烧结金属纤维复合材料(SFM)为研究对象,通过理论分析、数值模拟和实验测量,对其在大范围静水压力下对水下声波的吸收能力进行了广泛的研究,阐明了含金属腔的饱和水多孔材料的吸收机理。然后,采用等效水力半径准则,利用几何梯度波纹芯状通道缠绕单层饱和水SFM,从而形成饱和水多孔超材料。该过程通过结合阻抗转移法、Biot理论和SO算法的理论方法,建立了一种创新的、优化的几何梯度空间卷绕多孔水下吸声超材料(GGSPM)。此外,数值模拟结果表明,GGSPM在亚波长范围(~ λ/27 at 1480 Hz)内实现了稳健的水声吸收α≥0.9,与理论分析相吻合。此外,研究了斜入射波(仰角γea和方位角γaa)下的性能,以及材料相关参数(孔隙度φs和纤维直径df)和梯度相关声阻抗特性参数(通道数n2、n3和n4)的影响,为开发下一代高性能水下吸声材料提供了重要的潜力。
期刊介绍:
Since its launch in 1968, Applied Acoustics has been publishing high quality research papers providing state-of-the-art coverage of research findings for engineers and scientists involved in applications of acoustics in the widest sense.
Applied Acoustics looks not only at recent developments in the understanding of acoustics but also at ways of exploiting that understanding. The Journal aims to encourage the exchange of practical experience through publication and in so doing creates a fund of technological information that can be used for solving related problems. The presentation of information in graphical or tabular form is especially encouraged. If a report of a mathematical development is a necessary part of a paper it is important to ensure that it is there only as an integral part of a practical solution to a problem and is supported by data. Applied Acoustics encourages the exchange of practical experience in the following ways: • Complete Papers • Short Technical Notes • Review Articles; and thereby provides a wealth of technological information that can be used to solve related problems.
Manuscripts that address all fields of applications of acoustics ranging from medicine and NDT to the environment and buildings are welcome.