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相关概念视频

Shock Waves01:16

Shock Waves

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While deriving the Doppler formula for the observed frequency of a sound wave, it is assumed that the speed of sound in the medium is greater than the source's speed through it. When this condition is breached, a shock wave occurs.
When the source's speed approaches the speed of sound, constructive interference between successive wavefronts emitted by the source occurs immediately behind it. Initially, scientists believed that this constructive interference would result in such high...
2.2K
Sound as Pressure Waves01:17

Sound as Pressure Waves

2.5K
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...
2.5K
Pressure Variation in a Fluid at Rest01:11

Pressure Variation in a Fluid at Rest

393
In a fluid at rest, the pressure at any point beneath the fluid surface depends solely on the depth, not on the container's shape or size. This principle, known as hydrostatic pressure, arises because, in stationary fluids, there is no acceleration, meaning the forces within the fluid balance out. Only vertical forces, caused by the weight of the fluid above, contribute to pressure changes with depth.
When measuring pressure at two different levels within the fluid, the difference in...
393

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相关实验视频

Updated: Sep 9, 2025

Multispectral Optoacoustic Tomography for Functional Imaging in Vascular Research
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Multispectral Optoacoustic Tomography for Functional Imaging in Vascular Research

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在冲击波中使用光学断层扫描即时绘制3D压力图

Xiang Li, Qingchun Lei, Wei Fan

    Optics letters
    |August 29, 2025
    PubMed
    概括

    这项研究引入了一种用于3D冲击波压力测绘的新型光学断层扫描方法. 这种技术克服了侵入式探测器的局限性,使短暂的可压缩现象能够详细可视化.

    科学领域:

    • 流体动力学
    • 光学物理
    • 冲击波的现象

    背景情况:

    • 对于冲击波的传统压力测量使用侵入式探测器,产生有限的空间数据.
    • 传统测量技术的离散性阻碍了研究短暂的可压缩现象.

    研究的目的:

    • 开发第一个光学断层方法,用于在冲击波中进行空间时间分辨率的3D压力映射.
    • 克服冲击波表征中的侵入性点探测器的局限性.

    主要方法:

    • 在48kHz时获取时间分辨率的多角度背景导向 (BOS) 镜像.
    • 应用断层重建来确定3D折射率场.
    • 密度和速度场的水平设定方法和格拉德斯通-戴尔关系的整合,随后是压力的兰金-休等式.

    主要成果:

    • 在冲击波中成功重建全场3D压力分布 (40.5mm3体积).
    • 在爆炸管的排气管上演示该技术.
    • 与显示可接受准确度的压力传感器数据进行验证.

    结论:

    • 这种光学断层分析方法为全面的冲击波压力分析提供了一种非侵入性的方法.

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    Blast Quantification Using Hopkinson Pressure Bars
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  • 这种技术通过使详细的时空压力绘图能够显著推进短暂可压缩流的研究.
  • 该方法提供了传统的冲击波特征化技术的可行替代方案.