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相关概念视频

Turbulent Flow01:24

Turbulent Flow

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Turbulent flow is characterized by unpredictable fluctuations in velocity and pressure, which result in a chaotic fluid movement distinct from the orderly patterns of laminar flow. While laminar flow is governed by smooth, parallel layers with minimal mixing, turbulent flow exhibits highly irregular, three-dimensional patterns. This behavior arises due to instabilities in the fluid's velocity profile, and amplifies as the flow velocity increases. Minor disturbances, known as turbulent...
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Laminar and Turbulent Flow01:07

Laminar and Turbulent Flow

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Fluid dynamics is the study of fluids in motion. Velocity vectors are often used to illustrate fluid motion in applications like meteorology. For example, wind—the fluid motion of air in the atmosphere—can be represented by vectors indicating the speed and direction of the wind at any given point on a map. Another method for representing fluid motion is a streamline. A streamline represents the path of a small volume of fluid as it flows. When the flow pattern changes with time, the...
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General Characteristics of Pipe Flow I01:22

General Characteristics of Pipe Flow I

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Pipe flow refers to the movement of fluids within fully enclosed conduits, typically cylindrical in shape, such as water pipes or hydraulic hoses. These conduits are designed to withstand high-pressure gradients that drive fluid movement, contrasting with open-channel flows, where gravity is the primary driving force. Rectangular conduits, like air conditioning and heating ducts, generally operate at lower pressures and are less suited for high-pressure applications.
The classification of fluid...
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General Characteristics of Pipe Flow II01:24

General Characteristics of Pipe Flow II

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When fluid enters a pipe, it first passes through the entrance region, where the velocity profile adjusts due to viscous effects. In this region, a boundary layer forms along the pipe walls and grows until it fully occupies the pipe's cross-section. Once the boundary layer merges, the flow becomes fully developed, with a steady velocity profile that remains consistent along the pipe's length.
The distance to reach a fully developed flow is called the entrance length and depends on the...
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Turbulent Flow: Problem Solving01:09

Turbulent Flow: Problem Solving

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Carbonation is a process used to dissolve carbon dioxide gas in a liquid, commonly used in the production of carbonated beverages. Achieving efficient carbonation requires careful control of temperature, pressure, and flow conditions. By adjusting these parameters, carbonation efficiency can be maximized, producing a higher concentration of CO2 in the liquid.
Temperature is a key factor in CO2 solubility. In this case, the CO2 gas and the liquid are cooled to 20°C. Lower temperatures enhance...
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Design Example: Flow of Oil Through Circular Pipes01:25

Design Example: Flow of Oil Through Circular Pipes

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Understanding fluid flow behavior through pipes is critical in fluid mechanics, especially in applications like oil transportation through pipelines. Hagen-Poiseuille's law provides an exact solution derived from the Navier-Stokes equations for steady, incompressible, and laminar flow within a circular pipe. Hagen-Poiseuille's law helps determine the necessary pressure drop across a pipeline section by determining parameters like pipe length, radius, oil viscosity, and the desired volumetric...
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相关实验视频

Updated: Jan 22, 2026

Three-dimensional Particle Tracking Velocimetry for Turbulence Applications: Case of a Jet Flow
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Three-dimensional Particle Tracking Velocimetry for Turbulence Applications: Case of a Jet Flow

Published on: February 27, 2016

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在流管道流量中的结构边界状态转换.

L Moriconi1, G Saisse1

  • 1Universidade Federal do Rio de Janeiro, Instituto de Física, Av. Athos da Silveira Ramos 149, CEP: 21941-909 Rio de Janeiro, RJ, Brazil.

Physical review. E
|January 21, 2026
PubMed
概括

流管道流中的结构边界状态 (SBSs),以低速条纹和为特征,使用统计力学建模. 这种格子气体方法解释了SBS的发生和相关性,进步了我们对围墙流的理解.

科学领域:

  • 流体动力学 流体动力学
  • 统计力学 统计力学
  • 流研究 流研究

背景情况:

  • 流管道的流量表现出结构边界状态 (SBS),包括近壁的低速条纹和近流.
  • 了解这些结构的动态和波动对于流建模至关重要.

研究的目的:

  • 为了研究流管流中结构边界状态 (SBS) 的数值波动.
  • 使用统计力学框架,特别是格子气体方法来建模SBS.

主要方法:

  • 减少的自由度被引入为模拟低速条纹作为硬核颗粒的稀释格子气体.
  • 大都会随机进化被用来描述SBS过渡.
  • 使用格子气体方法来推导SBS发生概率和流向相关性.

主要成果:

  • 这项研究成功地使用两个参数的大都会随机演变模型来模拟SBS过渡.
  • 网格气体方法准确预测SBS发生的概率.
  • 沿着流向方向的SBS的自我相似相关性得出.

结论:

  • 这些发现支持了围绕墙壁的流作为连贯动态状态的马尔科夫链的观点.

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  • 这种统计力学方法为流结构和动态提供了新的视角.
  • 格子气体模型提供了一种简化但有效的工具,用于分析流中的SBS.