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相关概念视频

Surface Tension of Fluid01:22

Surface Tension of Fluid

1.8K
Surface tension is a fundamental property of fluids, occurring at the boundary between a liquid and a gas or between two immiscible liquids. This phenomenon arises from the cohesive forces between molecules at the fluid's surface, creating an effect similar to a stretched elastic membrane. Inside each fluid, molecules are equally attracted in all directions by neighboring molecules, but surface molecules experience a net inward force, resulting in surface tension.
Surface tension varies...
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Surface Tension, Capillary Action, and Viscosity02:57

Surface Tension, Capillary Action, and Viscosity

34.0K
Surface Tension
The various IMFs between identical molecules of a substance are examples of cohesive forces. The molecules within a liquid are surrounded by other molecules and are attracted equally in all directions by the cohesive forces within the liquid. However, the molecules on the surface of a liquid are attracted only by about one-half as many molecules. Because of the unbalanced molecular attractions on the surface molecules, liquids contract to form a shape that minimizes the number...
34.0K
Surface Tension and Surface Energy01:16

Surface Tension and Surface Energy

3.4K
When a paint brush is immersed in water, the bristles wave freely inside the water. When it is taken out, the bristles stick together. The reason behind this effect is surface tension.
Consider a beaker filled with liquid. The bulk molecules in the liquid experience equal attractive forces on all sides with the surrounding molecules. However, the surface molecules experience a net attractive force downward due to the bulk molecules. The surface of the liquid behaves like a stretched membrane,...
3.4K
Newtonian Fluid: Problem Solving01:18

Newtonian Fluid: Problem Solving

1.1K
Newtonian fluids exhibit a constant viscosity, meaning their shear stress and shear strain rate are directly proportional. This property ensures a predictable and stable response to applied forces, maintaining a linear relationship between force and flow. Examples include water, air, and light oils, consistently demonstrating this proportional behavior regardless of external conditions.
A velocity gradient forms within the fluid when a Newtonian fluid is placed between two parallel plates, with...
1.1K
Types of Fluids01:27

Types of Fluids

1.1K
Fluids can be classified into Newtonian and non-Newtonian fluids based on their response to shear stress. Newtonian fluids have a linear relationship between shear stress and the shear strain rate, following Newton's law of viscosity. Their viscosity remains constant regardless of the shear rate, making their behavior predictable and easier to analyze. Common examples include water, air, oil, and gasoline.
In contrast, non-Newtonian fluids do not follow Newton's law of viscosity, and...
1.1K
Viscosity01:17

Viscosity

7.6K
When water is poured into a glass, it falls freely and quickly, whereas if honey or maple syrup is poured over a pancake, it flows slowly and sticks to the surface of the container. This difference in the flow of different kinds of liquids arises due to the fluid friction between the liquid layers and the liquid and the surrounding material. This property of fluids is called fluid viscosity. In this example, water has a lower viscosity than honey and maple syrup.
The SI unit of viscosity is...
7.6K

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Challenges in Rheological Characterization of Highly Concentrated Suspensions &#8212; A Case Study for Screen-printing Silver Pastes
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玻璃成型流体的剪切率依赖的表面张力

Linnea Heitmeier1, Thomas Voigtmann1

  • 1Heinrich-Heine Universität Düsseldorf, Deutsches Zentrum für Luft- und Raumfahrt (DLR), Institute of Frontier Materials on Earth and in Space, 51170 Köln, Germany and Department of Physics, Universitätsstraße 1, 40225, Düsseldorf, Germany.

Physical review letters
|March 1, 2026
PubMed
概括

我们发现,非牛顿流体的表面张力随着剪切率的变化而变化. 我们的方法准确地测量了这种依赖剪切的表面张力,这对于理解复杂的流体接口至关重要.

科学领域:

  • 类风病学 类风病学 类风病学
  • 接口科学 接口科学
  • 复杂的流体 复杂的流体

背景情况:

  • 非牛顿流体表现出复杂的流动行为.
  • 像表面张力这样的界面特性在流体动力学中至关重要.
  • 标准的表面张力测量在剪切下复杂的流体可能是不准确的.

研究的目的:

  • 为了研究玻璃形成流体界面表面张力的剪切速率依赖.
  • 开发一种方法来准确测量在切割下非牛顿流体的真实界面张力.
  • 为了澄清剪流对接口属性的影响.

主要方法:

  • 将剪流应用于流体接口.
  • 分析压力异构性,以区分体积和界面区域.
  • 开发一种新的方法来提取取切割率依赖的表面张力.

主要成果:

  • 观察到表面张力取决于应用的剪切速率.
  • 测定表面张力的标准方法可以产生一种有效的张力,它结合了散装和接口属性.
  • 建立了一种方法,以清晰地定义界面区域,并提取真正的切割依赖的表面张力.

结论:

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  • 非牛顿流体的界面张力取决于剪切率.
  • 准确测量界面形学需要区分批量和界面贡献.
  • 这些发现对复杂流体接口的测量技术产生影响.