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相关概念视频

Impact01:30

Impact

137
Impact occurs when two bodies collide, leading to the application of impulsive forces between them. Analyzing impact mechanics involves considering two colliding particles moving along a line known as the line of impact, which passes through their centers and is perpendicular to the contact plane.
When particles with different initial velocities collide, they induce deformation by applying equal and opposite impulses. At the point of maximum deformation, the particles move together with...
137
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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Accelerating Fluids01:17

Accelerating Fluids

1.0K
When a fluid is in constant acceleration, the pressure and buoyant force equations are modified. Suppose a beaker is placed in an elevator accelerating upward with a constant acceleration, a. In the beaker, assume there is a thin cylinder of height h with an infinitesimal cross-sectional area, ΔS.
The motion of the liquid within this infinitesimal cylinder is considered to obtain the pressure difference. Three vertical forces act on this liquid:
1.0K
Steady Flow of a Fluid Stream01:27

Steady Flow of a Fluid Stream

275
Consider a control volume, such as a pipe with solid boundaries, through which fluid flows and changes direction due to the impulse exerted by the resulting force from the pipe walls. In steady flow, the mass of fluid entering the control volume at a given time, t, with velocity v1, is equal to the mass leaving after infinitesimal time dt, with velocity v2.
During this process, the momentum of the fluid within the control volume remains constant over the time interval dt. By applying the...
275
Excess Pressure Inside a Drop and a Bubble01:13

Excess Pressure Inside a Drop and a Bubble

1.6K
The shape of a small drop of liquid can be considered spherical, neglecting the effect of gravity. This drop can further be considered as two equal hemispherical drops put together due to surface tension. The forces acting on the spherical drop are due to the pressure of the liquid inside the drop, the pressure due to air outside the drop, and the force due to the surface tension acting on the two hemispherical drops.
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Theories of Dissolution: The Danckwerts' Model and Interfacial Barrier Model01:09

Theories of Dissolution: The Danckwerts' Model and Interfacial Barrier Model

278
Various dissolution theories provide insight into the factors that influence the dissolution rate. Danckwerts' Model suggests that turbulence, rather than a stagnant layer, characterizes the dissolution medium at the solid-liquid interface. In this model, the agitated solvent contains macroscopic packets that move to the interface via eddy currents, facilitating the absorption and delivery of the drug to the bulk solution. The regular replenishment of solvent packets maintains the...
278

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相关实验视频

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Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films
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Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films

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在四流体界面上的接口动力学在滴滴撞击时对两流体系统的影响.

Akash Chowdhury1, Sirshendu Misra1, Sushanta K Mitra1

  • 1Micro & Nano-Scale Transport Laboratory, Waterloo Institute for Nanotechnology, Department of Mechanical and Mechatronics Engineering, University of Waterloo, 200 University Avenue West, Waterloo, Ontario N2L 3G1, Canada.

Langmuir : the ACS journal of surfaces and colloids
|August 19, 2024
PubMed
概括

研究液滴对液体-液体系统的影响揭示了受粘度和惯性影响的界面液体动力学如何决定空洞形成和密封封. 这项研究探讨了不混合流体系统中的滴滴撞击现象.

科学领域:

  • 流体动力学 流体动力学
  • 接口现象 接口现象
  • 多相流程 多相流程

背景情况:

  • 滴滴对液体表面的影响是一种常见的现象,在各种行业中都有应用.
  • 了解界面动态对于控制诸如喷或密封等结果至关重要.
  • 之前的研究集中在单相或更简单的液体-液体相互作用上.

研究的目的:

  • 为了研究一个核心滴滴在一个界面外液层上的冲击过程中的界面动力学.
  • 分析空气腔和界面液体柱的形成和演变.
  • 确定影响密封动态的因素 (深密封闭合与无密封闭合).

主要方法:

  • 实验研究液滴对液体-液体系统的影响.
  • 多种影响韦伯数和界面外液体体积.
  • 高速成像以解决腔腔膨胀,收缩和液体稀释的问题.

主要成果:

  • 核心滴滴撞击拖走了界面液体,形成了一个带有空气腔的柱子.
  • 腔动力学涉及膨胀,快速收缩和界面液体稀释.
  • 结动力学是由粘性消散,界面拉力和核心落下惯性控制的.
  • 观察到从惯性主导到惯性-毛囊主导的深密封封的过渡.

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  • 在高的界面液体体量和低的扩散时发生了无密封封闭.
  • 结论:

    • 这项研究阐明了控制液滴对液体-液体接口的影响力的复杂相互作用.
    • 界面液体体积,扩散和冲击参数 (韦伯数) 极大地影响密封结果.
    • 研究结果提供了关于控制不混合流体系统中的界面混合和密封的见解.