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Viscosity

physical science Maturity 7-9

Some liquids are very thick.

Runny hunny.jpg
Runny hunny.jpg
Syrup is thick and slow. Water is thin and fast. Thick liquids stick together more. This helps us know how they flow. Do you like thick syrup?
Viscosity video science museum.ogv
Viscosity video science museum.ogv

38 words

Some liquids are very thick.

Runny hunny.jpg
Runny hunny.jpg
Syrup is thick and slow. Water is thin and fast.
Viscosity video science museum.ogv
Viscosity video science museum.ogv
This thickness is called stickiness. It happens when layers of liquid rub together. This rubbing slows the liquid down. This is why thick liquids do not flow fast. A thick liquid needs more push to move through a tube. Most liquids have this stickiness. Even air has it!
Viscous regimes chart.png
Viscous regimes chart.png
It is fun to see how things flow.

80 words

Have you ever noticed how honey flows slowly?

Runny hunny.jpg
Runny hunny.jpg
It is much thicker than water. Scientists call this thickness viscosity. Viscosity is a measure of a fluid's internal stickiness. It describes how much a liquid or gas resists flowing.
Viscosity video science museum.ogv
Viscosity video science museum.ogv

This happens because of friction. When layers of a fluid move, they rub together. This rubbing creates a force that slows things down. In liquids, this comes from tiny parts sticking together. In gases, it comes from tiny parts bumping into each other.

If you push a thick fluid through a tube, it moves fast in the center. It moves much slower near the walls. You must use extra force to keep it moving. This is because you have to overcome that friction.

Laminar shear.svg
Laminar shear.svg

Most fluids have some viscosity. A fluid with zero viscosity is called an ideal fluid. This only happens in special cases called superfluids. For most things, like water or air, viscosity changes with heat or pressure. It is a key part of how our world moves.

175 words

Have you ever wondered why honey pours slowly while water splashes quickly?

Runny hunny.jpg
Runny hunny.jpg
This difference comes from a property called viscosity. Viscosity is a measure of a fluid's internal stickiness. It describes how much a liquid or gas resists flowing.
Viscosity video science museum.ogv
Viscosity video science museum.ogv
Most fluids have some level of viscosity. This means they always have some resistance to moving. A fluid with no resistance is called an ideal or inviscid fluid. This only happens in very special cases called superfluids at low temperatures.
Viscous regimes chart.png
Viscous regimes chart.png

Viscosity works because of friction between different layers of a fluid. Imagine a fluid moving in layers, like a deck of cards sliding. When layers move at different speeds, they rub against each other. This rubbing creates a force that tries to slow the faster layer down. In liquids, this stickiness comes from cohesive molecular forces. These are forces that pull the tiny molecules together. In gases, viscosity happens because of molecular collisions. This is when the tiny parts of the gas bump into each other.

Laminar shear.svg
Laminar shear.svg

Scientists use specific math to describe this behavior. They often look at a simple setup called a Couette flow. In this setup, a fluid is trapped between two large plates. One plate stays still, while the other moves at a constant speed.

Laminar shear flow.svg
Laminar shear flow.svg
As the top plate moves, the fluid particles move with it. The speed of the fluid changes from the bottom to the top. The layers move faster at the top and slower at the bottom. To keep the top plate moving, you must apply an external force. This force is needed to overcome the friction between the layers.

There are many ways to measure and name viscosity. One common name is dynamic viscosity, often shown with the Greek letter mu (μ). Another name is kinematic viscosity, which is shown with the Greek letter nu (ν). Scientists define dynamic viscosity as a force multiplied by time divided by an area. Its standard units are called pascal-seconds. Kinematic viscosity is different because it is the ratio of dynamic viscosity to the fluid's density. These measurements help engineers understand how fluids will act in machines or pipes.

Viscosity video science museum.ogv
Viscosity video science museum.ogv

Viscosity is not always the same for every material. Some fluids are called Newtonian fluids. Their viscosity does not change much when you change how fast they deform. However, many other fluids are non-Newtonian. These fluids can change their thickness depending on how much force you apply. Some are called thixotropic or rheopectic based on how they change over time. Viscosity also changes depending on a fluid's temperature and pressure. Knowing these details helps us understand everything from how sound waves move to how honey pours.

University of Queensland Pitch drop experiment-white bg.jpg
University of Queensland Pitch drop experiment-white bg.jpg

462 words

Viscosity is a fundamental physical property that describes a fluid's internal resistance to flow. It is often described as the "stickiness" of a liquid or gas. When different layers of a fluid move at different speeds, a friction force develops between them. This force causes the slower layer to act on the faster layer, attempting to slow it down.

Viscosity video science museum.ogv
Viscosity video science museum.ogv
This internal friction is essential to understanding how liquids and gases behave in everything from small pipes to massive oceans.

The mechanism of viscosity depends on the state of the matter. In liquids, viscosity arises from cohesive molecular forces, which are the forces that pull molecules together. In gases, viscosity results from molecular collisions between particles.

Laminar shear.svg
Laminar shear.svg
When a viscous fluid is forced through a tube, it does not move at the same speed everywhere. It flows more quickly near the center line and more slowly near the walls. To maintain this flow, a specific amount of stress, such as a pressure difference, must be applied to overcome the friction between the moving layers.

Scientists often study this behavior using a model called a planar Couette flow. In this setup, a fluid is trapped between two large, parallel plates. One plate remains fixed while the other moves at a constant speed.

Laminar shear flow.svg
Laminar shear flow.svg
If the speed is low enough to avoid turbulence, the fluid particles move in parallel layers. The speed of the fluid varies from zero at the bottom plate to the full speed of the top plate. This creates a velocity gradient, where each layer moves faster than the one below it. An external force is required to keep the top plate moving because the fluid applies a resisting force against it.

There are two primary ways to measure this property: dynamic and kinematic viscosity. Dynamic viscosity, often represented by the Greek letter mu (μ), measures the relationship between viscous stresses and the rate of deformation. Its SI unit is the pascal-second (Pa·s).

Viscous regimes chart.png
Viscous regimes chart.png
Kinematic viscosity, represented by the Greek letter nu (ν), is the ratio of dynamic viscosity to the fluid's density. It is also known as momentum diffusivity. While dynamic viscosity focuses on the force required to move the fluid, kinematic viscosity describes how easily momentum moves through the substance.

Fluids are categorized based on how their viscosity reacts to force. Newtonian fluids are those where the viscosity does not change significantly with the rate of deformation. Common examples include water and many gases. However, many materials are non-Newtonian. These fluids can change their thickness depending on how they are moved. Some non-Newtonian flows are time-independent, such as pseudoplastic, plastic, or dilatant flows. Others are time-dependent, such as thixotropic or rheopectic flows.

Runny hunny.jpg
Runny hunny.jpg

Viscosity is not a constant value for a single substance; it changes based on environmental conditions. A fluid's viscosity depends on its temperature, pressure, and the rate of deformation. For most fluids, temperature plays a major role in how thick they feel. Additionally, the second law of thermodynamics implies that all fluids must have positive viscosity. The only exception is superfluidity, where a fluid can have zero viscosity at extremely low temperatures. A fluid with no viscosity is called an ideal or inviscid fluid.

Understanding viscosity is vital for many scientific fields. In transport theory, viscosity is viewed as the property that characterizes momentum transport. This is similar to how thermal conductivity describes heat transport or how diffusivity describes mass transport.

University of Queensland Pitch drop experiment-white bg.jpg
University of Queensland Pitch drop experiment-white bg.jpg
Just as heat flows from hot to cold, momentum flows from high-velocity layers to low-velocity layers. This concept allows engineers to predict how much energy will be lost in systems involving moving fluids, such as sound waves or shock waves.

623 words
🖼️ Images & Media (10)
File:Viscosities.gif
Viscosities.gif
File:Laminar shear.svg
Laminar shear.svg
File:Laminar shear flow.svg
Laminar shear flow.svg
File:Viscous regimes chart.png
Viscous regimes chart.png
Viscosity video science museum.ogv
09. Вискозност на течности.ogg
File:Glassviscosityexamples.png
Glassviscosityexamples.png
File:B2O3 viscosoty.jpg
B2O3 viscosoty.jpg
File:University of Queensland Pitch drop experiment-white bg.jpg
University of Queensland Pitch drop...
File:Runny hunny.jpg
Runny hunny.jpg
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