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Collimator

physical science Maturity 9-11

A tool helps light move in a straight line.

Collimator.svg
Collimator.svg
It makes a beam thin and neat. This tool helps us see things clearly. It can even help doctors treat sick people. It is a very smart tool.
ParticleCollimator.svg
ParticleCollimator.svg
Do you like to see straight lines?

46 words

A collimator is a special tool.

Collimator.svg
Collimator.svg
It makes beams of light or tiny bits move in a straight line. It can make a beam thin and neat.
ParticleCollimator.svg
ParticleCollimator.svg

Sometimes, rays move in many different ways. This can make a picture look blurry. A collimator uses tiny holes to help. It only lets the straight rays pass through. This makes the picture very clear.

These tools help us see things better. They can even help doctors. They help shape beams to treat sick people. It is a very helpful tool.

90 words

A collimator is a tool that narrows a beam.

ParticleCollimator.svg
ParticleCollimator.svg
It can make rays move in the same direction. This makes the beam straight. It can also make the beam smaller in size.

In science, we use them for light and tiny particles. Some rays are hard to focus with lenses. For these, a collimator acts like a filter.

Collimator2.svg
Collimator2.svg
It might be a sheet with tiny holes. Only the rays traveling straight through the holes can pass. Other rays hit the sides and are blocked. This helps make a clear, sharp image instead of a blurry one.

Doctors use these tools too. In radiation therapy, they help shape beams of power.

NNSA-NSO-190.jpg
NNSA-NSO-190.jpg
This helps target the beam to the right spot. Some systems use many heavy metal plates. These plates slide to make the exact shape needed.

Collimators are very helpful, but they have a limit. They block many rays to keep the beam straight. This means the beam loses some of its strength. Because of this, some space tools do not use them.

175 words

A collimator is a clever device that narrows a beam.

ParticleCollimator.svg
ParticleCollimator.svg
This can happen in two different ways. First, it can make rays move in the same direction. This makes the beam parallel or straight. Second, it can make the beam smaller in size. This is often called a beam limiting device. Scientists use these tools to control particles and waves. They help make sure energy goes exactly where it is needed.
Collimator.svg
Collimator.svg

How a collimator works depends on the type of beam. In light optics, it might use a curved mirror or a lens. This helps replicate a target at infinity with very little parallax. For tiny particles like X-rays or neutrons, it acts like a filter.

Collimator2.svg
Collimator2.svg
Imagine a sheet of lead with many tiny holes bored through it. Only the rays traveling nearly parallel to the holes can pass through. Any other rays hit the sides of the holes and are blocked. This process creates a clear, sharp image instead of a blurry one.

People have been using these tools for a long time. An English physicist named Henry Kater invented the floating collimator. He reported his work in January 1825. His invention was a great help to practical astronomy. Kater also mentioned earlier work by Carl Friedrich Gauss and Friedrich Bessel. Later, in May 1921, the United States Army Ordnance Department wrote about collimators in fire control instruments. These tools helped align things like gun sights and binoculars.

There are many specific ways to use these devices today. In industry, workers use tungsten collimators to inspect materials for defects. These tools use gamma radiation from sources like cobalt-60. A collimator with 8 HVL can reduce radiation intensity by 88.5%. In hospitals, doctors use them for radiation therapy. They use machines called linear accelerators to treat patients. Some of these systems use multileaf collimators. These have 50 to 120 heavy-metal plates that slide to shape the beam.

NNSA-NSO-190.jpg
NNSA-NSO-190.jpg

You can see the idea of collimation in many places. It is used in gun sights so a viewer can see a target. Some sights use a beam splitter so the viewer sees a reticle. Even lasers use collimators to work properly. However, these tools have one main drawback. They block many rays to keep the beam straight. This makes the beam lose some of its strength. Because of this, some space tools, like the Mars Odyssey gamma ray spectrometer, do not use them.

405 words

A collimator is a specialized device used to narrow a beam of particles or waves.

ParticleCollimator.svg
ParticleCollimator.svg
This narrowing occurs in two distinct ways. First, it can align the directions of motion so that rays become parallel. This is often called making light collimated. Second, it can act as a beam limiting device to reduce the spatial cross section of the beam. By controlling these beams, scientists can focus energy and improve the clarity of images and measurements.

In the field of optics, a collimator often uses a curved mirror or a lens. The device typically includes a light source or an image placed at its focus. This setup allows the device to replicate a target focused at infinity with very little parallax.

Collimator.svg
Collimator.svg
Optical collimators are also used for calibration. They help check if optical elements are aligned on the optical axis. They can also set elements at the proper focus. This is useful for aligning devices like binoculars or gun sights. Some collimator sights use a reticle, which is a crosshair, at the focus so the viewer sees an image of it.

When dealing with X-rays, gamma rays, or neutrons, the mechanism changes. It is difficult to use lenses to focus these types of radiation. Instead, a collimator acts as a filter to allow only rays traveling in a specific direction to pass through.

Collimator2.svg
Collimator2.svg
For example, a Söller collimator might use a sheet of lead with many tiny holes bored through it. Only rays traveling nearly parallel to these holes can pass through. Any other rays will hit the sides of the holes and be absorbed. This prevents rays from all directions from being recorded, which would create a blurry and useless image.

For neutrons, a collimator might use a sandwich arrangement. This can be several feet long and consists of alternating layers. One layer is a neutron-absorbing material, such as gadolinium. The other layer is a neutron-transmitting material, like air or aluminum. If the assembly rotates, the curvature can allow only one specific energy of neutrons to pass. This process allows for both energy selection and collimation, ensuring rays are recorded in their proper place.

History shows the long-standing importance of these tools in science. The English physicist Henry Kater invented the floating collimator. He reported his invention in January 1825. This device provided a great service to the field of practical astronomy. Kater noted that his work built upon previous efforts by Carl Friedrich Gauss and Friedrich Bessel. Later, in May 1921, the United States Army Ordnance Department documented the use of collimators in fire control instruments.

Today, collimators are vital in industrial and medical settings. In industrial radiography, workers use tungsten collimators to inspect materials for defects. These devices use gamma radiation sources like iridium-192 or cobalt-60. A collimator is rated by how many half value layers, or HVL, it contains. These layers reduce undesirable radiation by half. For instance, a 4 HVL tungsten collimator has walls that reduce radiation intensity by 88.5%.

NNSA-NSO-190.jpg
NNSA-NSO-190.jpg
In hospitals, linear accelerators use collimators for radiation therapy. These machines use primary and secondary collimators to shape the beam. Some advanced systems use multileaf collimators, or MLCs, which contain 50 to 120 heavy-metal plates that slide to form a specific shape.

Despite their benefits, collimators have a significant limitation. While they improve resolution, they also reduce the intensity of the beam. This happens because they must block many incoming rays to keep the beam straight. Most lead collimators allow less than 1% of incident photons to pass through. Because of this loss of strength, some remote sensing instruments avoid them. For example, the gamma ray spectrometer on the Mars Odyssey is a non-collimated instrument to maintain high sensitivity.

618 words
🖼️ Images & Media (5)
File:ParticleCollimator.svg
ParticleCollimator.svg
File:Collimator.svg
Collimator.svg
File:NNSA-NSO-190.jpg
NNSA-NSO-190.jpg
File:Collimator2.svg
Collimator2.svg
File:UW Collimator.jpg
UW Collimator.jpg
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