取决于时空的流体声学和流的产生
1Defence Science and Technology Laboratory, Porton Down, Salisbury, SP4 0JQ, United Kingdom.
The Journal of the Acoustical Society of America
|September 26, 2025
概括
这项研究考察了变化性质的流体中的波传播. 它发现,旋流是在波面上产生的,似乎以声速行驶,而不是随流体流动.
科学领域:
- 声学和流体动力学 声学和流体动力学
- 在复杂的媒体中波浪传播.
背景情况:
- 研究具有空间和时间变化的材料性质的流体中的波传播.
- 考虑了由于时空变化的粘度和底层流体流量可以忽略不计的场景.
- 导出自相连的波方程,与传统的压力声学分开.
研究的目的:
- 分析具有不均性质的流体中的波动,特别是解决流的产生.
- 探索当材料属性在空间上有所不同时波传播的行为.
- 检查非线性对波特征的影响.
主要方法:
- 导出具有不同性质的流体的自相连波方程.
- 一种理想流体的分析,其声音速度的变化是由固定墙上的温度变化引起的.
- 在特定条件下的波传播的近似解决方案.
- 对波特征的非线性效应进行简要检查.
主要成果:
- 在空间变化的介质中的波动不是纯粹的膨胀,并且表现出相关的旋转.
- 旋转在波浪前面产生,以声速传播,与底层流体流动不同.
- 声音在恒定背景流体上的声音散射中的非线性会在质流密度上诱导电磁组件,但不会产生旋转.
结论:
- 流体性质的空间变化从根本上改变了波动力学,导致波浪前端产生.
- 旋流在音速上的明显传播是这些不均介质的关键特征.
- 非线性效应虽然影响了质量流,但在所研究的情景中并没有对旋流产生贡献.
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