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Alternating current

physical science Maturity 9-11

Power moves in a special way.

Types of current by Zureks.svg
Types of current by Zureks.svg
It goes back and forth. It does not just go one way. This power helps your TV work. It also helps your lights turn on. It is in your home right now. Can you find a plug?

48 words

Electricity moves in a special way.

Types of current by Zureks.svg
Types of current by Zureks.svg
It goes back and forth. It does not just flow one way. This is called alternating current.
Electric Transmission.png
Electric Transmission.png

We use this power in our homes. It runs your TV and your fan. It also makes your lamps light up.

Special tools help move this power. They can make the power stronger. They can also make it safer. This helps the power travel far. It stops the power from getting lost as heat.

Highvoltagetransmissionlines.jpg
Highvoltagetransmissionlines.jpg
This power travels on big lines. It is very useful for us.

97 words

Electricity can move in two different ways. Most power in our homes uses alternating current, or AC. In AC, the electricity changes direction many times every second.

Types of current by Zureks.svg
Types of current by Zureks.svg
This is different from direct current, or DC. DC flows in only one direction. We use AC to run things like lamps, fans, and TVs.
Electric Transmission.png
Electric Transmission.png

Moving power over long distances can be hard. Some power is lost as heat in the wires. To stop this, we use a transformer. A transformer is a tool that can change the voltage. Voltage is the push that moves electricity.

Highvoltagetransmissionlines.jpg
Highvoltagetransmissionlines.jpg
We can use a transformer to make the voltage very high. High voltage helps the power travel far without much loss. When the power reaches your town, another transformer makes it safe. It lowers the voltage for your home. This makes the power easy and safe to use.

In some places, the power moves in a wave shape. This is called a sine wave. This wave shows how the current goes up and down.

Sine wave 2.svg
Sine wave 2.svg
The shape repeats in a set of steps called a cycle.

189 words

Electricity moves in different ways to power our world. Most of the power in our homes uses alternating current, or AC. In AC, the electric current periodically reverses direction. It also changes its magnitude, or strength, continuously over time.

Types of current by Zureks.svg
Types of current by Zureks.svg
This is different from direct current, known as DC. DC flows in only one direction. We use AC to run many things. You likely use AC when you plug in a lamp, a fan, or a television.
Sine wave 2.svg
Sine wave 2.svg

Most AC power moves in a specific shape called a sine wave. This wave shows the current moving in a positive direction and then a negative direction. One full trip of this wave is called a cycle.

Sine wave 2.svg
Sine wave 2.svg
Some tools use different shapes, like square waves or triangular waves. These different shapes are used in things like guitar amplifiers. AC is also used for audio and radio signals. These signals carry information like sound or images. They often alternate at much higher frequencies than the power in your walls.

Moving electricity over long distances is a big job. We use AC because it is easy to change its voltage. Voltage is the electrical pressure that pushes the current. We use a tool called a transformer to change this pressure.

Electric Transmission.png
Electric Transmission.png
To move power efficiently, we use a step-up transformer. This makes the voltage very high for the long trip. High voltage helps reduce the energy lost as heat in the wires. When the power gets near your home, a step-down transformer lowers it. This makes the voltage safe, usually between 100 V and 240 V.
Highvoltagetransmissionlines.jpg
Highvoltagetransmissionlines.jpg

Many power systems use a method called three-phase generation. This uses three separate coils in a generator. These coils are placed at an angle of 120 degrees from each other. This creates three different current waves that work together.

Highvoltagetransmissionlines.jpg
Highvoltagetransmissionlines.jpg
Large machines often use more coils to work better. For example, a 12-pole machine might use 36 coils. This allows the machine to run at a lower speed. A 12-pole machine can run at 600 rpm. This is much slower than a 2-pole machine running at 3600 rpm. Lower speeds are better for very large machines.

Different countries use different speeds for their AC power. This speed is called frequency and is measured in Hertz, or Hz. Most places use 50 Hz or 60 Hz. Some places, like Japan, use a mix of both. In the past, the Niagara Falls generators used 25 Hz. This was a compromise for heavy motors and lights. Some European rail systems still use 16.7 Hz. At very high frequencies, a strange thing called the skin effect happens. The current is pushed away from the center of the wire. It flows mostly on the outer surface instead.

Electric Transmission.png
Electric Transmission.png

467 words

Alternating current, often called AC, is a type of electric current that periodically reverses its direction. Unlike direct current (DC), which flows in only one direction, AC changes its magnitude continuously over time. This movement is usually represented by a sine wave. This wave shows the current moving in a positive direction and then a negative direction. One complete trip through these changes is known as a cycle.

Types of current by Zureks.svg
Types of current by Zureks.svg

Most electrical power delivered to homes and businesses uses AC. You use this energy when you plug in a television, a fan, or a lamp. While power distribution is the most common use, AC is also used for other things. Audio and radio signals are types of alternating current. These signals carry information like sound or images by using modulation. These signals typically alternate at much higher frequencies than the power in your wall sockets.

Sine wave 2.svg
Sine wave 2.svg

Moving electricity over long distances requires a very specific process. We use AC because its voltage can be easily changed using a transformer. A transformer is a device that can increase or decrease electrical pressure. To move power efficiently, a step-up transformer increases the voltage for the long trip. High voltage allows power to be sent through lines with less energy lost as heat. This heat loss is caused by the resistance of the wires.

Electric Transmission.png
Electric Transmission.png

The math behind these power losses is quite specific. Power loss in a wire is the product of the current squared and the resistance. This means that if you double the voltage, you can halve the current. When the current is halved, the power loss due to resistance is reduced by a factor of four. This makes high-voltage transmission much more efficient. Power is transmitted at hundreds of kilovolts on large pylons. It is then stepped down to tens of kilovolts, and finally to 100 V – 240 V for domestic use.

Highvoltagetransmissionlines.jpg
Highvoltagetransmissionlines.jpg

Many large-scale systems use three-phase electrical generation. This method uses three separate coils in a generator stator. These coils are physically offset by an angle of 120 degrees from each other. This creates three current waveforms that are equal in size but out of phase. In practice, larger machines often use more poles to work better. For example, a 12-pole machine uses 36 coils with 10-degree spacing. This allows the machine to run at a lower rotational speed, such as 600 rpm. This is much easier on large machines than a 2-pole machine running at 3600 rpm.

Different countries use different frequencies for their AC power. Frequency is measured in Hertz (Hz), which counts cycles per second. Most of the world uses 50 Hz or 60 Hz. Some places, like Japan, use a mixture of both. In the past, the Niagara Falls generators used 25 Hz. This was a compromise to help heavy motors and lights work together. Some European rail systems still use 16.7 Hz. Other specialized areas, like aircraft or military sites, sometimes use 400 Hz to reduce the weight of equipment.

At very high frequencies, a phenomenon called the skin effect occurs. In a direct current, the electricity flows uniformly through the whole wire. However, an alternating current creates electromagnetic waves. These waves push the current away from the center of the wire toward the outer surface. At very high frequencies, the current effectively flows only on the surface. This happens within a certain thickness called the skin depth. This effect increases the effective resistance of the wire, which can cause more energy loss through heating.

590 words
🖼️ Images & Media (7)
File:Types of current by Zureks.svg
Types of current by Zureks.svg
File:Electric Transmission.png
Electric Transmission.png
File:Highvoltagetransmissionlines.jpg
Highvoltagetransmissionlines.jpg
File:Sine voltage.svg
Sine voltage.svg
File:Sine wave 2.svg
Sine wave 2.svg
File:ZBD team.jpg
ZBD team.jpg
File:DBZ trafo.jpg
DBZ trafo.jpg
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