阻塞孔管中的气泡的碎片化特征
Yufeng Zhang1, Zhijie Huang1, Lixia Sun1
1Mechanical Engineering College, Beihua University, Jilin 132022, China.
Micromachines
|August 29, 2024
概括
使用流体体积 (VOF) 模型的模拟显示,更高的进气速度提高了微气泡发生器的性能,而更大的压力孔直径减少了它. 这些发现为优化管状微气泡发生器设计提供了指导.
科学领域:
- 流体动力学 流体动力学
- 多相流程 多相流程
- 微流体学 微流体学
背景情况:
- 管状微气泡发电机对于各种应用至关重要.
- 优化它们的性能需要了解泡碎片化动态.
- 目前的设计可能无法完全利用流体动力学原理来增强泡生成.
研究的目的:
- 为了研究一个节流孔微气泡发生器中的泡碎片化特征.
- 分析关键设计参数对微泡产生性能的影响.
- 为优化管状微气泡发电机设计提供理论和实践基础.
主要方法:
- 使用流体体积 (VOF) 多相流量模型进行数值模拟.
- 在模拟环境中使用COMSOL Multiphysics软件.
- 进行实验验证,以确认模拟的准确性.
主要成果:
- 节孔管道的进入速度增加与改善的泡碎片化正相关.
- 扩大的阻塞孔直径显著降低了泡碎片性能.
- 扩张部分的长度对泡碎片的影响很小.
结论:
- 该研究成功模拟和验证了微泡碎片化特征.
- 进气速度和节速孔直径是性能优化的关键参数.
- 研究结果为管状微气泡发电机的设计和改进提供了宝贵的见解.
更多相关视频
08:25Measurements of Local Instantaneous Convective Heat Transfer in a Pipe - Single and Two-phase Flow
Published on: April 30, 2018
7.1K
11:14A Microfluidic System with Surface Patterning for Investigating Cavitation Bubble(s)–Cell Interaction and the Resultant Bioeffects at the Single-cell Level
Published on: January 10, 2017
11.7K
相关概念视频
General Characteristics of Pipe Flow II
1.1K
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...
The distance to reach a fully developed flow is called the entrance length and depends on the...
1.1K
General Characteristics of Pipe Flow I
1.1K
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...
The classification of fluid...
1.1K
Turbulent Flow: Problem Solving
107
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...
Temperature is a key factor in CO2 solubility. In this case, the CO2 gas and the liquid are cooled to 20°C. Lower temperatures...
107
Turbulent Flow
156
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...
156
Boundary Layer Characteristics
58
When a fluid encounters a solid surface, a boundary layer forms due to the interaction between the fluid's motion and the stationary surface. This phenomenon is characterized by a thin region adjacent to the surface where viscous forces dominate, influencing the fluid's velocity profile. The development of the boundary layer begins at the leading edge of the surface and evolves as the fluid moves downstream.As the fluid flows over the surface, friction between the fluid and the wall slows down...
58
Laminar Flow
1.0K
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:
1.0K
