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Eddy current

physical science Maturity 11-13

Moving magnets make tiny loops of power.

Eddy current brake diagram.svg
Eddy current brake diagram.svg
These loops move in metal. They can make metal feel warm. They can also help stop things fast. This helps trains slow down safely. Do you like fast trains?

40 words

Moving magnets make tiny loops of power.

Eddy current brake diagram.svg
Eddy current brake diagram.svg
These loops move inside metal. They look like little whirlpools in water.

When metal moves near a magnet, these loops form. The loops can make the metal feel warm. This happens because the power turns into heat.

These loops can also push back. They act like a drag on moving parts. This helps stop spinning tools very fast.

Some trains use this to slow down. The loops help the train stop smoothly. It is a very clever way to use magnets.

Eddy currents due to magnet.svg
Eddy currents due to magnet.svg
Do you want to see how magnets work?

105 words

Have you ever seen a whirlpool in a river?

Eddy currents due to magnet.svg
Eddy currents due to magnet.svg
In science, we find something similar in metal. We call these eddy currents. They are small loops of electric power. They form inside metals when a magnetic field changes. This can happen if a magnet moves near the metal.
Eddy current brake diagram.svg
Eddy current brake diagram.svg
These loops do two main things. First, they make the metal get warm. The power turns into heat. This is called Joule heating. Second, the loops push back against movement. This is because of Lenz's law. This law says the current makes a field that fights the change that made it. This creates a drag force. It acts like a brake to slow things down.
Laminated core eddy currents 2.svg
Laminated core eddy currents 2.svg
Some tools and even trains use this to stop. It helps them slow down in a smooth way. In machines like motors, these loops can waste power. To stop this, engineers use laminations. These are thin sheets of metal with gaps between them. The gaps stop the loops from getting too big. This keeps the machines working well.

185 words

Have you ever watched a small whirlpool spin in a stream?

Eddy currents due to magnet.svg
Eddy currents due to magnet.svg
In science, we find something very similar inside pieces of metal. These are called eddy currents. They are loops of electric current that flow inside a conductor. These loops form when a magnetic field changes near the metal. This can happen if a magnet moves past the metal. It can also happen if the magnetic field itself changes over time. These currents are important because they create both heat and motion.
Eddy currents - explanation of drag force.svg
Eddy currents - explanation of drag force.svg

These currents work in a very specific way. When a magnetic field moves through metal, it pushes on the electrons inside. This causes the electrons to flow in closed circles. These circles look like little whirlpools or eddies in a liquid. According to Lenz's law, these loops create their own magnetic field. This new field always fights against the change that created it. This fight creates a drag force that pushes back against motion.

Eddy current brake diagram.svg
Eddy current brake diagram.svg
As the electrons move through the metal, they also create heat. This is known as Joule heating. The faster the metal moves, the stronger these effects become.

Scientists have been studying these currents for a long time. François Arago was the first person to observe them. In 1824, he noticed something called rotatory magnetism. Later, Michael Faraday explained these discoveries more fully. In 1834, Emil Lenz stated Lenz's law about how currents oppose change. The French physicist Léon Foucault is also credited with discovering eddy currents. In September 1855, he saw how a spinning copper disc would heat up. He noticed it was harder to spin the disc near a magnet.

Laminated core eddy currents 2.svg
Laminated core eddy currents 2.svg

There are many real numbers and facts about these currents. For example, the strength of the current depends on the magnetic field. It also depends on the area of the loop and the material. The current is also affected by the resistivity of the metal. In 1879, David E. Hughes used these ideas for testing metal. He used them to perform metallurgical sorting tests. Today, we use these principles in many different machines. We can even use them to find tiny cracks in metal parts. This is called eddy-current testing.

You can see these currents working in things you might know. Some trains use eddy current brakes to slow down smoothly. These brakes use magnets to create a drag force on the wheels. This helps the train stop without much wear. However, these currents can also be a problem in machines. They cause energy loss in electric motors and transformers. To fix this, engineers use laminations. These are thin sheets of metal with gaps between them. These gaps stop the loops from getting too large.

EI-transformer core interleaved with flux paths.png
EI-transformer core interleaved with flux paths.png

469 words

An eddy current is a loop of electric current induced within a conductor. These currents occur when a magnetic field changes inside that conductor. This change can happen because a magnet is moving past the metal. It can also happen if the magnetic field itself changes over time, such as in an alternating current (AC) system.

Eddy currents due to magnet.svg
Eddy currents due to magnet.svg
These currents flow in closed loops. They always move in planes that are perpendicular to the magnetic field. The name comes from fluid dynamics. In water, an eddy is a localized area of turbulence or a small whirlpool. In metal, these currents look and act very much like those liquid vortices.

The mechanism behind these currents relies on the laws of electromagnetism. According to Faraday's law of induction, a changing magnetic flux induces an electromotive force (emf) in a conductor. This force pushes the electrons, causing them to flow in circular paths. The magnitude of this current depends on several specific factors. It is proportional to the strength of the magnetic field and the area of the loop. It is also proportional to the rate of change of the magnetic flux. However, the current is inversely proportional to the resistivity of the material. This means materials that resist electricity more strongly will have smaller eddy currents.

Lenz's law explains how these currents react back on their source. This law states that the direction of the induced current will create a magnetic field that opposes the change that caused it.

Eddy currents - explanation of drag force.svg
Eddy currents - explanation of drag force.svg
When a magnet moves toward a conductive surface, the eddy currents create a secondary magnetic field. This secondary field acts to cancel out part of the external field. At the leading edge of a magnet, the current creates a repulsive force. At the trailing edge, it creates an attractive force. Both of these forces combine to create a drag force. This force acts in a direction that opposes the motion of the conductor.

As these electrons move through the metal, they encounter resistance. This movement causes the current to dissipate energy as heat. This process is known as Joule heating.

Eddy current brake diagram.svg
Eddy current brake diagram.svg
Because the kinetic energy of the moving object is converted into heat, the metal becomes warm. This dual nature of eddy currents—creating both magnetic force and heat—makes them both useful and problematic. The strength of these effects is directly related to the velocity of the motion. The faster the object moves, the stronger the drag force and the more heat is generated.

The history of these discoveries involves several famous scientists. François Arago was the first to observe these effects in 1824. He noticed a phenomenon called rotatory magnetism. Michael Faraday later completed and explained these discoveries. In 1834, Emil Lenz stated Lenz's law, which describes how the induced fields oppose the original change. The French physicist Léon Foucault is credited with the specific discovery of eddy currents. In September 1855, he observed a copper disc rotating between the poles of a magnet. He noticed the disc became difficult to rotate and grew hot due to the induced currents.

Humans have found many practical ways to use these principles. One major application is eddy current braking. Some trains use these brakes to provide a smooth stop. The magnets create a drag force on the wheels that opposes their rotation. This system is useful because the braking force is proportional to the speed. As the wheels slow down, the braking force also reduces.

20. Валтенхофеново правило.ogv
20. Валтенхофеново правило.ogv
Another application is induction heating. In these systems, eddy currents are used to heat objects in specialized furnaces. We also use eddy-current testing to find flaws in metal. This is a non-destructive way to detect tiny cracks or irregularities in parts. David E. Hughes first used these principles for metallurgical sorting in 1879.

Despite these uses, eddy currents can cause significant energy loss in electrical machinery. They occur in AC inductors, transformers, electric motors, and generators. This loss of efficiency happens because the currents turn electrical energy into wasted heat. To minimize this, engineers use special construction methods. They often use laminated magnetic cores.

Laminated core eddy currents 2.svg
Laminated core eddy currents 2.svg
These cores are made of thin sheets of metal separated by insulating gaps. These gaps prevent electrons from traveling in large, wide loops. By using thin laminations or materials with low conductivity, like ferrites, engineers can greatly reduce energy loss.
EI-transformer core interleaved with flux paths.png
EI-transformer core interleaved with flux paths.png

741 words
🖼️ Images & Media (8)
File:Eddy currents due to magnet.svg
Eddy currents due to magnet.svg
File:Eddy currents - explanation of drag force.svg
Eddy currents - explanation of drag force.svg
File:Eddy current brake diagram.svg
Eddy current brake diagram.svg
File:Laminated core eddy currents 2.svg
Laminated core eddy currents 2.svg
20. Валтенхофеново правило.ogv
File:Linear motor field.gif
Linear motor field.gif
File:EI-transformer core interleaved.svg
EI-transformer core interleaved.svg
File:EI-transformer core interleaved with flux paths.png
EI-transformer core interleaved with flux...
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