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相关概念视频

General Characteristics of Pipe Flow I01:22

General Characteristics of Pipe Flow I

476
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...
476
Laminar Flow: Problem Solving01:24

Laminar Flow: Problem Solving

67
Laminar flow occurs when a fluid moves smoothly in parallel layers with minimal mixing and turbulence. In fluid mechanics, ensuring laminar flow within a pipe is essential for precise control of flow characteristics, especially in engineering applications. The key factor in determining whether flow remains laminar is the Reynolds number, a dimensionless quantity that depends on the fluid's velocity, density, viscosity, and the pipe's diameter. A Reynolds number of 2100 or lower...
67
General Characteristics of Pipe Flow II01:24

General Characteristics of Pipe Flow II

453
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...
453
Single Pipe Systems01:24

Single Pipe Systems

61
In pipe flow analysis, problems are typically categorized into three types — Type I, Type II, and Type III — based on the known parameters and the desired outcome. Each type of problem addresses specific engineering requirements using fluid properties, pipe characteristics, and operational conditions.
In a Type I problem, fluid properties (density and viscosity), pipe characteristics (including diameter, length, and surface roughness), and the flow rate or average velocity are...
61
Laminar Flow01:27

Laminar Flow

381
Laminar flow represents a smooth, orderly fluid motion where particles move along parallel paths, resulting in minimal mixing between layers. Streamlined particle paths characterize this flow regime and occur under conditions where viscous forces dominate over inertial forces. The distinction between laminar, transitional, and turbulent flow is primarily determined by the Reynolds number, a dimensionless quantity calculated as:
381
Sieve Analysis and Grading Curves01:19

Sieve Analysis and Grading Curves

229
Sieve analysis is a method used to determine the particle size distribution of aggregate materials. This process involves the following steps:
229

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相关实验视频

Updated: May 11, 2025

Frugal Imaging Technique of Capillary Flow Through Three-Dimensional Polymeric Printing Powders
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Frugal Imaging Technique of Capillary Flow Through Three-Dimensional Polymeric Printing Powders

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在颗粒型管道流量中的颗粒大小分离.

Patric Müller1, Artem Panchenko1, Wing To Ku1

  • 1Institute for Multiscale Simulation, Friedrich-Alexander Universität Erlangen-Nürnberg, 91058 Erlangen, Germany.

Chaos (Woodbury, N.Y.)
|April 18, 2025
PubMed
概括

增加管道的表面粗性可以减少颗粒流中的密度波. 然而,这种修改可能会导致多个颗粒大小的系统中的颗粒大小分离. 研究人员探索了这种分离发生的条件.

科学领域:

  • 颗粒状材料的物理学 颗粒状材料的物理学
  • 流体动力学 流体动力学
  • 粒子科学与工程 粒子科学与工程

背景情况:

  • 管道中的颗粒物物流表现出密度波,导致间歇性的固体分数变化.
  • 以前已经证明,纹理管道的内部墙壁可以减轻这些密度波.

研究的目的:

  • 为了研究表面粗度对管道颗粒流量的影响.
  • 为了确定表面粗性是否导致双分散系统中的粒子大小分离.
  • 为了描述与隔离相关的参数范围.

主要方法:

  • 利用粒子模拟来模拟通过有纹理内壁的管道的颗粒流.
  • 分析了表面粗度对双分散颗粒流中的粒子分布和分离的影响.

主要成果:

  • 表面粗,在缓解密度波的同时,可以诱导粒子大小分离作为一个意想不到的后果.
  • 在双分散系统中观察到这种分离现象的特定参数范围.

结论:

  • 流量控制管道的表面纹理需要仔细考虑潜在的颗粒大小分离.
  • 了解隔离的参数空间对于设计有效的颗粒流系统至关重要.

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