声学明亮的单子子在泡液体中的传播
Jiawen Yu1,2,3, Jiangyi Zhang1,2,3
1National Key Laboratory of Underwater Acoustic Technology, Harbin Engineering University, Harbin 150001, China.
The Journal of the Acoustical Society of America
|August 8, 2024
概括
泡液体中的声学明亮单子表现出强大的抗干扰能力. 这些单子在碰撞后保持其形状和速度,即使有粘性损失,也表现出强大的粒子状行为.
科学领域:
- 声学 声学 在声学方面
- 非线性动力学是一种非线性动力学.
- 流体力学 流体力学 流体力学
背景情况:
- 声学单子是具有粒子状性质的波浪现象.
- 含有泡的介质引入了独特的非线性和消散效应.
- 了解单子传播对于声波操纵至关重要.
研究的目的:
- 为了研究在泡介质中的声学明亮单子的传播规则.
- 分析非线性,分散和消散对单子动态的影响.
- 为了确认声学单子的粒子性质和稳定性.
主要方法:
- 从泡泡-液体混合物模型中推导一个损失的非线性施罗丁格方程.
- 包裹的明亮声学单体表达式的分析导出.
- 分析和数值方法来研究散射诱导的动力学.
- 对单子碰撞的分析,以评估稳定性和保存定律.
主要成果:
- 一个分析表达式准确地捕捉了声学明亮单体传播,即使有粘性损失.
- 分析了对单质子动态的非线性和分散效应.
- 声学单子表现出类似粒子的行为,在弹性碰撞时保存能量和动量.
- 碰撞后,孤独星保持了它们的振幅,速度和形状.
结论:
- 泡介质中的声学明亮单子表现出显著的稳定性和抗干扰性能.
- 由此衍生出的分析模型准确地描述了散散环境中的单体行为.
- 单子碰撞证实了它们在这些复杂介质中的粒子性质和动态稳定性.
相关概念视频
Standing Waves in a Cavity
894
A household microwave and lasers are examples of standing electromagnetic waves in a cavity. When two conducting metal plates are placed parallel at the nodal planes, it creates a cavity where standing waves are formed. The cavity between the two planes is analogous to a stretched string held at the points x = 0 and x = L. Here, the distance 'L' between the two planes must be an integer multiple of half of the wavelength. The wavelengths that satisfy this condition are given by:
894
Deriving the Speed of Sound in a Liquid
486
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...
486
Speed of Sound in Solids and Liquids
2.9K
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...
2.9K
Propagation of Waves
2.3K
When a wave propagates from one medium to another, part of it may get reflected in the first medium, and part of it may get transmitted to the second medium. In such a case, the interface of the two mediums can be considered as a boundary that is neither fixed nor free.
Consider a scenario where a wave propagates from a string of low linear mass density to a string of high linear mass density. In such a case, the reflected wave is out of phase with respect to the incident wave, however the...
Consider a scenario where a wave propagates from a string of low linear mass density to a string of high linear mass density. In such a case, the reflected wave is out of phase with respect to the incident wave, however the...
2.3K
Entropy and Solvation
7.0K
The process of surrounding a solute with solvent is called solvation. It involves evenly distributing the solute within the solvent. The rule of thumb for determining a solvent for a given compound is that like dissolves like. A good solvent has molecular characteristics similar to those of the compound to be dissolved. For example, polar solutions dissolve polar solutes, and apolar solvents dissolve apolar solutes. A polar solvent is a solvent that has a high dielectric constant (ϵ...
7.0K
Reflection of Waves
3.7K
When a wave travels from one medium to another, it gets reflected at the boundary of the second medium. A common example of this is when a person yells at a distance from a cliff and hears the echo of their voice. The sound waves (longitudinal waves) traveling in the air are reflected from the bounding cliff. Similarly, flipping one end of a string whose other end is tied to a wall causes a pulse (transverse wave) to travel through the string, which gets reflected upon reaching the wall. In...
3.7K


