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Vacuum pump

technology Maturity 7-9

A vacuum pump moves air.

L-Pumpe2.png
L-Pumpe2.png
It pulls air out of a space. This leaves a space with no air. It can help us do big jobs. We use it in many ways. Do you want to see it work?

40 words

A vacuum pump moves air out of a space.

L-Pumpe2.png
L-Pumpe2.png
This leaves a space with very little air. Long ago, people used pumps to move water.
Molchanova by levitskiy.jpg
Molchanova by levitskiy.jpg
One man named Otto made a special pump. He showed that air can hold things together. He used two metal halves for this. Two horses could not pull them apart!
HiVacuumApparatus-Tesla.png
HiVacuumApparatus-Tesla.png
Today, we use many kinds of pumps. Some use fast fans to push air out. Others use cold to trap the air. These tools help us do big jobs.

89 words

A vacuum pump is a tool. It pulls gas out of a closed space. This leaves behind a partial vacuum. A vacuum is a space with very little air.

L-Pumpe2.png
L-Pumpe2.png

People have used pumps for a long time. Long ago, people used suction pumps to move water. In 1650, Otto von Guericke made the first vacuum pump. He showed that air can hold things together. He used two metal halves for an experiment. Two teams of horses could not pull them apart!

Molchanova by levitskiy.jpg
Molchanova by levitskiy.jpg

Today, we use three main ways to make a vacuum. The first way is called positive displacement. These pumps use parts to trap gas. Then they push the gas out.

Two moving spirals scroll pump.gif
Two moving spirals scroll pump.gif

The second way is momentum transfer. These pumps use fast fans or jets. They knock gas molecules out of the space.

Cut through turbomolecular pump.jpg
Cut through turbomolecular pump.jpg

The third way is entrapment. These pumps catch gases in a solid state. Some use very cold temperatures to do this. This is called a cryopump. These tools help us do many big jobs.

179 words

A vacuum pump is a special device used to remove gas particles from a sealed space. When the pump pulls the gas out, it leaves behind a partial vacuum. This means the space has much less air than the world around us.

L-Pumpe2.png
L-Pumpe2.png
These tools are very important for many different jobs. They help scientists study how things work in empty spaces. Without them, we could not do much high-level science.

There are three main ways these pumps work. The first way is called positive displacement. These pumps expand a small space to let gas in, then seal it and squeeze it out.

Two moving spirals scroll pump.gif
Two moving spirals scroll pump.gif
The second way is momentum transfer. These pumps use fast-spinning blades or jets of fluid to knock gas molecules out of a chamber.
Cut through turbomolecular pump.jpg
Cut through turbomolecular pump.jpg
The third way is entrapment. These pumps catch gas particles and hold them in a solid state.

People have been studying pumps for a very long time. In the 13th century, an engineer named Al-Jazari described suction pumps used for water. Much later, in 1650, Otto von Guericke invented the first true vacuum pump. He performed a famous experiment with two metal hemispheres.

Molchanova by levitskiy.jpg
Molchanova by levitskiy.jpg
He showed that two teams of horses could not pull the halves apart once the air was gone. This proved how much air pressure can hold things together.

Many famous scientists helped improve these tools over the years. Robert Boyle and Robert Hooke worked together on an air pump. In 1855, Heinrich Geissler made a mercury pump that reached a very low pressure.

HiVacuumApparatus-Tesla.png
HiVacuumApparatus-Tesla.png
This discovery helped people see new electrical properties. Later, in the 20th century, many new types were made. These included the diffusion pump and the turbomolecular pump.

Vacuum pumps are used in many places today. For example, some pumps are used in making computer chips. Other pumps, like the Roots blower, are used for high pumping speeds.

Roots blower - 2 lobes.svg
Roots blower - 2 lobes.svg
You might also think of a simple manual water pump. It uses a vacuum to pull water up from a deep well. Even though it is simple, it uses the same basic ideas as huge industrial machines. All these different tools help us control the air around us.

375 words

A vacuum pump is a specialized device used to remove gas particles from a sealed volume. By evacuating these particles, the pump creates a partial vacuum, which is a space with much lower pressure than the atmosphere. These devices are essential for scientific research and industrial processes. They allow us to study how matter behaves in environments with very few molecules.

L-Pumpe2.png
L-Pumpe2.png

Vacuum pumps operate through three primary scientific techniques: positive displacement, momentum transfer, and entrapment. Positive displacement pumps work by repeatedly expanding a small, sealed cavity. As the cavity expands, the pressure drops, allowing gas to flow in from the main chamber. The pump then seals the cavity and shrinks it to exhaust the gas into the atmosphere.

Two moving spirals scroll pump.gif
Two moving spirals scroll pump.gif
This method is highly effective for creating low vacuums. Common examples include the piston pump, the rotary vane pump, and the scroll pump.

Momentum transfer pumps, also called molecular pumps, function differently. These are used when the pressure is already quite low, typically below 0.1 kPa. At these low pressures, gas molecules do not bump into each other as much as they do at normal atmospheric pressure. Instead, they interact more frequently with the walls of the chamber. Momentum transfer pumps use high-speed rotating blades or jets of dense fluid to knock these molecules toward the exhaust.

Cut through turbomolecular pump.jpg
Cut through turbomolecular pump.jpg
There are two main types: the diffusion pump, which uses jets of oil or mercury vapor, and the turbomolecular pump, which uses high-speed fans. Because these pumps lack a physical seal, they often require a positive displacement "backing pump" to prevent air from leaking back into the system.

The third technique is entrapment. Entrapment pumps do not push the gas out of the system. Instead, they capture gas molecules and hold them in a solid or adsorbed state. One example is the cryopump, which uses extremely cold temperatures to condense gases into solids. Another is the ion pump, which uses strong electrical fields to move ions onto a solid surface. These pumps are used to reach ultrahigh vacuums, though they eventually need to be regenerated to clear the trapped particles.

The history of vacuum technology began long before the modern pump was invented. Suction pumps have been used since antiquity, and the Arab engineer Al-Jazari described dual-action suction pumps in the 13th century. By the 17th century, scientists began to study the limits of suction. In 1638, Galileo Galilei suggested that water columns in pumps would break under their own weight at 34 feet. While his specific math was incorrect, his work led to major discoveries. In 1643, Evangelista Torricelli built the first mercury barometer and proved that the space at the top was a vacuum.

Molchanova by levitskiy.jpg
Molchanova by levitskiy.jpg

In 1650, Otto von Guericke invented the first true vacuum pump. He famously demonstrated the power of atmospheric pressure using the Magdeburg hemispheres experiment. He showed that even teams of horses could not pull apart two metal hemispheres when the air had been evacuated from between them. Later, Robert Boyle and Robert Hooke improved these designs to study the properties of a vacuum more closely. By 1855, Heinrich Geissler invented the mercury displacement pump, reaching a record vacuum of 10 Pa.

HiVacuumApparatus-Tesla.png
HiVacuumApparatus-Tesla.png

Today, different pumps are chosen based on specific technical needs. For instance, a Roots blower is used when very high pumping speeds are required, though it has a low compression ratio.

Roots blower - 2 lobes.svg
Roots blower - 2 lobes.svg
In semiconductor manufacturing, regenerative pumps are used in load locks because they offer high pumping rates and low contamination. Engineers must consider many factors when selecting a pump, such as manufacturing tolerances, reliability, and tolerance to dust or chemicals. Understanding these mechanisms allows us to manipulate the physical world at a molecular level.

625 words
🖼️ Images & Media (6)
File:Roots blower - 2 lobes.svg
Roots blower - 2 lobes.svg
File:Molchanova by levitskiy.jpg
Molchanova by levitskiy.jpg
File:HiVacuumApparatus-Tesla.png
HiVacuumApparatus-Tesla.png
File:L-Pumpe2.png
L-Pumpe2.png
File:Two moving spirals scroll pump.gif
Two moving spirals scroll pump.gif
File:Cut through turbomolecular pump.jpg
Cut through turbomolecular pump.jpg
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