一种高效的宽带声音吸收方法,使用在声学涂层中的定期多层固体包含
Xiaogang Li1, Peng Liu1, Xilong Zhang1
1School of Mechanical and Automotive Engineering, Qingdao University of Technology, Qingdao, China.
PloS one
|November 21, 2024
概括
研究人员开发了先进的无声涂层,使用多层周期性固体内含物来提高水下声学隐形性. 优化的结构表明宽带声音吸收在广泛的频率范围,提高设备性能.
科学领域:
- 材料科学 材料科学 材料科学
- 声学 声学 声学 声学
- 海军工程是海军工程.
背景情况:
- 无声涂层对于水下设备的声学隐形至关重要.
- 宽带声音吸收是设计有效声学涂层的一个关键挑战.
研究的目的:
- 提出和研究用于宽带声音吸收的多层声学涂层,并有定期固体含有.
- 开发一种分析模型,用于预测这种涂料的声学特性.
- 优化涂层结构以提高吸声性能.
主要方法:
- 导出一个分析模型来计算有效的材料和嵌入层的几何参数.
- 应用转移矩阵方法来确定声吸收特性.
- 使用遗传算法优化多层涂层结构.
- 分析模型与有限元素方法进行验证的比较.
主要成果:
- 分析模型被验证为有限元素方法的可行和高效替代方案.
- 对几何参数对单层钢嵌入声学性能影响的研究.
- 一个两层优化的结构实现了宽带的声音吸收从1780Hz到8890Hz (超过两个八度) 与亚波长厚度.
- 分析不同散射器材料对声音吸收的影响.
结论:
- 开发的分析模型为设计和分析声学涂层提供了一种有效的方法.
- 优化的多层结构与定期固体内置提供了显著的宽带声音吸收能力.
- 这项研究为用于水下设备的先进声学隐形解决方案的实际设计提供了理论指导.
相关概念视频
Sound Waves: Interference
3.7K
Sound waves can be modeled either as longitudinal waves, wherein the molecules of the medium oscillate around an equilibrium position, or as pressure waves. When two identical waves from the same source superimpose on each other, the combination of two crests or two troughs results in amplitude reinforcement known as constructive interference. If two identical waves, that are initially in phase, become out of phase because of different path lengths, the combination of crests with troughs...
3.7K
Sound as Pressure Waves
2.4K
Sound waves, which are longitudinal waves, can be modeled as the displacement amplitude varying as a function of the spatial and temporal coordinates. As a column of the medium is displaced, its successive columns are also displaced. As the successive displacements differ relatively, a pressure difference with the surrounding pressure is created. The gauge pressure varies across the medium.
The pressure fluctuation depends on the difference in displacements between the successive points in the...
The pressure fluctuation depends on the difference in displacements between the successive points in the...
2.4K
Echo
493
The human ear cannot distinguish between two sources of sound if they happen to reach within a specific time interval, typically 0.1 seconds apart. More than this, and they are perceived as separate sources.
Imagine the sound is reflected back to the ears. Assuming that the source is very close to the human, the difference between hearing the two sounds—the emitted sound and the reflected sound—may be more than the minimum time for perceiving distinct sounds. If this is the case,...
Imagine the sound is reflected back to the ears. Assuming that the source is very close to the human, the difference between hearing the two sounds—the emitted sound and the reflected sound—may be more than the minimum time for perceiving distinct sounds. If this is the case,...
493
Deriving the Speed of Sound in a Liquid
479
As with waves on a string, the speed of sound or a mechanical wave in a fluid depends on the fluid's elastic modulus and inertia. The two relevant physical quantities are the bulk modulus and the density of the material. Indeed, it turns out that the relationship between speed and the bulk modulus and density in fluids is the same as that between the speed and the Young's modulus and density in solids.
The speed of sound in fluids can be derived by considering a mechanical wave...
The speed of sound in fluids can be derived by considering a mechanical wave...
479
Sound Waves: Resonance
2.5K
Resonance is produced depending on the boundary conditions imposed on a wave. Resonance can be produced in a string under tension with symmetrical boundary conditions (i.e., has a node at each end). A node is defined as a fixed point where the string does not move. The symmetrical boundary conditions result in some frequencies resonating and producing standing waves, while other frequencies interfere destructively. Sound waves can resonate in a hollow tube, and the frequencies of the sound...
2.5K
Speed of Sound in Solids and Liquids
2.8K
Most solids and liquids are incompressible—their densities remain constant throughout. In the presence of an external force, the molecules tend to restore to their original positions, which is only possible because the constituents interact. The interactions help the constituents pass on information about external disturbances, like sound waves. Therefore, sound waves travel faster through these media. Compared to solids, the constituents in a liquid are less tightly bound. Thus, sound...
2.8K


