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相关概念视频

Steady, Laminar Flow Between Parallel Plates01:17

Steady, Laminar Flow Between Parallel Plates

116
Understanding steady, laminar flow between parallel plates is essential for analyzing and designing flow in narrow rectangular channels, commonly found in various water conveyance and drainage systems. The Navier-Stokes equations govern fluid motion and are generally challenging to solve due to their nonlinearity. However, simplifications are possible in certain cases, like the steady laminar flow between parallel plates. For this scenario, we assume steady, incompressible, laminar flow.
116
Steady, Laminar Flow in Circular Tubes01:23

Steady, Laminar Flow in Circular Tubes

135
Hagen-Poiseuille flow describes a viscous fluid's steady, incompressible flow through a cylindrical tube with a constant radius R. This flow profile is often applied to understand fluid transport in narrow channels, such as capillaries. It serves as a foundational example of laminar flow. In this model, cylindrical coordinates (r,θ,z) are used to describe the radial (r), angular (θ), and axial (z) dimensions within the tube. For Hagen-Poiseuille flow, the velocity profile is...
135
Couette Flow01:22

Couette Flow

173
Couette flow represents the flow of fluid between two parallel plates, with one plate fixed and the other moving with a constant velocity. This configuration allows for a simplified analysis using the Navier-Stokes equations, which govern fluid motion under conditions of viscosity and incompressibility. For Couette flow, the assumptions include a steady, laminar, incompressible flow with a zero-pressure gradient in the flow direction. This flow type is beneficial for understanding shear-driven...
173
Uniform Depth Channel Flow01:27

Uniform Depth Channel Flow

58
Uniform depth channel flow keeps fluid depth consistent along channels such as irrigation canals. In natural channels, such as rivers, approximate uniform flow is often assumed. This condition occurs when the channel’s bottom slope matches the energy slope, balancing potential energy lost from gravity with head loss due to shear stress. This balance prevents depth changes along the channel length, resulting in a steady, uniform flow.Uniform flow in open channels with a constant cross-section...
58
Poiseuille's Law and Reynolds Number01:10

Poiseuille's Law and Reynolds Number

6.2K
Any fluid in a horizontal tube can flow due to pressure differences—fluid flows from high to low pressure. The flow rate (Q) is the ratio of pressure difference and resistance through a horizontal tube. The greater the pressure difference, the higher the flow rate. The flow resistance is expressed as:
6.2K
Distribution of Molecular Speeds01:27

Distribution of Molecular Speeds

3.8K
The motion of molecules in a gas is random in magnitude and direction for individual molecules, but a gas of many molecules has a predictable distribution of molecular speeds. This predictable distribution of molecular speeds is known as the Maxwell-Boltzmann distribution. The distribution of molecular speeds in liquids is comparable to that of gases but not identical and can help to understand the phenomenon of the boiling and vapor pressure of a liquid. Consider that a molecule requires a...
3.8K

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Updated: May 24, 2025

Controlling Flow Speeds of Microtubule-Based 3D Active Fluids Using Temperature
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Controlling Flow Speeds of Microtubule-Based 3D Active Fluids Using Temperature

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纳米通道中的温度驱动流:理论和模拟

Pietro Anzini1,2, Zeno Filiberti1, Alberto Parola1,2

  • 1Dipartimento di Scienza e Alta Tecnologia, Università degli Studi dell'Insubria, Via Valleggio 11, 22100 Como, Italy.

The Journal of chemical physics
|March 3, 2025
PubMed
概括

热透,流体运动是由表面附近的温度梯度驱动的,由压力梯度解释. 这项研究提供了一个理论解决方案,并通过分子动力学模拟来验证它.

科学领域:

  • 流体动力学 流体动力学
  • 热力学是一种热力学.
  • 统计力学 统计力学

背景情况:

  • 热透描述了由热梯度驱动的流体运动,没有外力.
  • 这种现象源于在限制表面附近的接触式压力梯度.
  • 之前的工作使用线性响应理论阐明了它的微观起源.

研究的目的:

  • 为了提供一个明确的理论解决方案,在板块几何学热透流体的流动.
  • 用平衡性质来导出压力梯度的简单表达式.
  • 通过广泛的不平衡分子动力学模拟来验证理论预测.

主要方法:

  • 利用保存定律来解决静态流体流动方程.
  • 以质量-热电流相关函数表示热奥斯摩斯系数.
  • 进行了2D不平衡分子动力学模拟,具有不同的壁-粒子相互作用.

主要成果:

  • 导出了热奥斯莫斯系数的明确解.
  • 在平衡性质方面获得了压力梯度的简单表达式.
  • 模拟结果显示,在液体和气体状态下,压力下降和速度配置文件的理论预测与模拟结果一致.

结论:

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Generation and Control of Electrohydrodynamic Flows in Aqueous Electrolyte Solutions

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Assembly and Characterization of an External Driver for the Generation of Sub-Kilohertz Oscillatory Flow in Microchannels
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Assembly and Characterization of an External Driver for the Generation of Sub-Kilohertz Oscillatory Flow in Microchannels

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Generation and Control of Electrohydrodynamic Flows in Aqueous Electrolyte Solutions
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Generation and Control of Electrohydrodynamic Flows in Aqueous Electrolyte Solutions

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Assembly and Characterization of an External Driver for the Generation of Sub-Kilohertz Oscillatory Flow in Microchannels
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Assembly and Characterization of an External Driver for the Generation of Sub-Kilohertz Oscillatory Flow in Microchannels

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  • 理论框架准确地描述了热透现象.
  • 衍生的相关函数提供了微观链接到宏观的运输系数.
  • 分子动力学模拟证实了理论方法在不同流体状态的有效性.