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Foucault pendulum

physical science Maturity 11-13

A heavy weight swings on a long string.

Foucault Pendulum.jpg
Foucault Pendulum.jpg
It moves back and forth. The swing looks like it turns in a circle. This happens because our Earth is spinning. It is a cool way to see our world move.
Foucault-rotz.gif
Foucault-rotz.gif
Can you see it spin?

47 words

A heavy weight hangs from a long wire.

Foucault Pendulum.jpg
Foucault Pendulum.jpg
It swings back and forth in a line.

As time goes by, the swing seems to turn. It looks like it moves in a big circle.

Foucault-rotz.gif
Foucault-rotz.gif

This happens because the Earth is spinning. The Earth turns under the swinging weight.

The spin looks strongest at the top of the world. It does not work at the middle of the Earth.

You can see these in many science museums. They are a fun way to see our world move.

Panthéon Pendule de Foucault2.JPG
Panthéon Pendule de Foucault2.JPG

93 words

A Foucault pendulum is a special tool. It shows us that the Earth is spinning.

Foucault Pendulum.jpg
Foucault Pendulum.jpg
This device was named after Léon Foucault. He was a scientist from France.

How does it work? A heavy weight hangs from a very long wire. It swings back and forth in a straight line. The swing stays in the same place in space. But the Earth turns underneath the pendulum.

Foucault-rotz.gif
Foucault-rotz.gif
Because the Earth moves, the swing seems to turn. It looks like it is making a big circle on the ground.

The spin looks different depending on where you are. At the North Pole, the swing turns in a full circle every day. At the equator, the swing does not seem to turn at all.

Foucault pendulum at north pole animated.gif
Foucault pendulum at north pole animated.gif
This is because the Earth's spin affects the view differently at different latitudes.

Foucault showed this in 1851. He used a heavy lead weight in Paris. The wire was 67 meters long.

Panthéon Pendule de Foucault2.JPG
Panthéon Pendule de Foucault2.JPG
Today, you can see these pendulums in many science museums.

176 words

A Foucault pendulum is a special tool used to show how our planet moves. It was created by a French physicist named Léon Foucault. This device provides direct evidence that the Earth is constantly spinning.

Foucault Pendulum.jpg
Foucault Pendulum.jpg
While it might look like the pendulum is changing its path, something else is happening. The pendulum actually keeps its swing in the same direction in space. It is the Earth that rotates underneath the swinging weight. This makes the movement of the pendulum look like it is turning.
Foucault-rotz.gif
Foucault-rotz.gif

To make this work, a heavy weight is hung from a very long wire. The weight, called a bob, swings back and forth in a straight line. Because of inertia, the swing stays fixed relative to the distant stars. As the Earth turns from west to east, the ground moves. This causes the path of the swing to appear to change over time.

Foucault pendulum animated.gif
Foucault pendulum animated.gif
This change in direction is called precession. The speed of this turn depends on where you are on Earth. At the North Pole, the swing makes a full circle every day. At the equator, the swing does not appear to turn at all.

Léon Foucault first showed his experiment to the public in February 1851. He did this at the Paris Observatory in France.

Panthéon Pendule de Foucault2.JPG
Panthéon Pendule de Foucault2.JPG
A few weeks later, he built a very famous version at the Panthéon. This version used a 28-kilogram brass-coated lead bob. The wire holding the bob was 67 meters long. It was a spectacular way to show the Earth's rotation. Foucault even wrote a paper about it in 1851 to explain his results.

There are many interesting facts about these pendulums. In Paris, the swing at the Panthéon takes about 31.8 hours to complete a circle. This is because Paris is at a specific latitude. The pendulum swings back and forth about every 16.5 seconds.

Foucault pendulum at north pole animated.gif
Foucault pendulum at north pole animated.gif
Scientists must be very careful when they build them. If the construction is not perfect, the pendulum might veer in the wrong way. Some museums use magnets to keep the heavy bob swinging. This helps fight against air resistance that would stop the motion.

You can find these pendulums in many science museums today. They help people connect what they see to how the universe works. The movement is similar to how a spinning top wobbles as it turns.

Wheatstone Foucault device 256x256.png
Wheatstone Foucault device 256x256.png
It is also like how a bicycle wheel might act when placed on a turning disk. These connections help us understand how many different things in nature move. Even though the Earth feels still, the pendulum proves we are always spinning. It turns a big idea into something we can see with our own eyes.

460 words

A Foucault pendulum is a scientific device designed to demonstrate the rotation of the Earth. It was conceived by the French physicist Léon Foucault to provide direct, visible evidence of our planet's movement. While the Earth feels stationary to us, it is actually spinning on its axis. A pendulum can reveal this motion by maintaining a steady swing in space while the ground moves beneath it.

Foucault Pendulum.jpg
Foucault Pendulum.jpg

The mechanism relies on the principle of inertia. When a heavy weight, called a bob, is set in motion, it tends to keep its plane of oscillation fixed relative to the distant masses of the universe. As the Earth rotates from west to east, the floor and the point of suspension move with the planet. To an observer standing on the ground, it appears as though the pendulum's path is slowly turning. This apparent change in the direction of the swing is known as precession.

Foucault-rotz.gif
Foucault-rotz.gif

The speed of this precession depends entirely on the latitude where the pendulum is located. At the geographic North or South Poles, the effect is most dramatic. The plane of oscillation stays fixed in space while the Earth completes a full rotation underneath it. Consequently, a pendulum at the North Pole appears to rotate clockwise, completing a full circle in one sidereal day. At the equator, however, the plane of oscillation remains fixed relative to the Earth, and no rotation is observed.

Foucault pendulum at north pole animated.gif
Foucault pendulum at north pole animated.gif

Léon Foucault introduced his famous experiment in 1851. He first held a public exhibition at the Meridian of the Paris Observatory. Shortly after, he created a massive installation at the Panthéon in Paris. This famous version used a 28-kilogram brass-coated lead bob suspended by a 67-meter-long wire.

Panthéon Pendule de Foucault2.JPG
Panthéon Pendule de Foucault2.JPG
Because the Panthéon is located at a latitude of 48° 52' N, the pendulum's swing does not complete a circle in 24 hours. Instead, it takes approximately 31.8 hours to make a full rotation, moving clockwise at about 11.3° per hour.

Building a precise Foucault pendulum is a difficult engineering task. If the construction is not perfect, the pendulum may experience "veering" that masks the Earth's rotation. This can happen if the support wire is elastic or if there is a geometrical imperfection in the system. The Nobel laureate Heike Kamerlingh Onnes studied these issues in 1879. He found that imperfections could cause the pendulum to shift from linear to elliptic oscillation. To ensure a clean start, scientists often use a flame to burn through a thread holding the bob. This prevents unwanted sideways motion during the initial launch.

Foucault pendulum animated.gif
Foucault pendulum animated.gif

Maintaining the motion is another challenge due to air resistance. Air resistance acts as a damping force that gradually slows the pendulum down. To keep the experiment running in museums, many installations use an electromagnetic drive to push the bob. Some museums also perform regular launching ceremonies to attract visitors. In the original Panthéon setup, the pendulum had a 6-meter amplitude. With each 16.5-second oscillation, the pendulum moved about 5 mm along its measuring circle.

The physics of the Foucault pendulum connects to many other rotating systems. For example, the precession of a spinning top follows a similar pattern. In 1851, Charles Wheatstone described a device using a vibrating spring on a disk to mimic this effect.

Wheatstone Foucault device 256x256.png
Wheatstone Foucault device 256x256.png
Even complex concepts in physics, such as Thomas precession in relativistic particles, share mathematical similarities with this simple device. The pendulum serves as a bridge between everyday observation and the deep geometric phases that govern how objects move in a rotating universe.

613 words
🖼️ Images & Media (9)
File:Preferences-desktop-accessibility-alert.svg
Preferences-desktop-accessibility-alert.svg
Foucault pendulum 1.webm
File:Panthéon Pendule de Foucault2.JPG
Panthéon Pendule de Foucault2.JPG
File:Foucault Pendulum.jpg
Foucault Pendulum.jpg
File:Foucault-rotz.gif
Foucault-rotz.gif
File:Foucault pendulum at north pole animated.gif
Foucault pendulum at north pole animated.gif
File:Foucault pendulum plane of swing semi3D.gif
Foucault pendulum plane of swing semi3D.gif
File:Wheatstone Foucault device 256x256.png
Wheatstone Foucault device 256x256.png
File:Foucault pendulum animated.gif
Foucault pendulum animated.gif
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