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Primary mirror

technology Maturity 11-13

A big mirror helps us see stars.

James Webb Primary Mirror.jpg
James Webb Primary Mirror.jpg
It catches light from far away. It can be made of glass. This mirror helps us see the sky. It makes the stars look bright. Can you look at the stars tonight?

43 words

A big mirror helps us see stars.

James Webb Primary Mirror.jpg
James Webb Primary Mirror.jpg

It catches light from far away. This mirror is the main part of a telescope. It can be made of shiny metal.

A20010288000 NASM2017-10014 (cropped).jpg
A20010288000 NASM2017-10014 (cropped).jpg

Some mirrors are made of glass. They have a thin, shiny layer on top. This layer helps them catch light.

Large mirrors are hard to make. They can bend under their own weight. Some big telescopes use many small pieces instead. This helps them see even better.

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A reflecting telescope uses a big mirror to see. This is called a primary mirror. It is the main part that gathers light.

James Webb Primary Mirror.jpg
James Webb Primary Mirror.jpg

Old mirrors were made of polished metal. Isaac Newton used a metal mirror in 1668. That mirror was only 3.3 cm wide. Later, makers put silver on glass. Now, they use aluminum on glass. They put the metal on in a vacuum.

A20010288000 NASM2017-10014 (cropped).jpg
A20010288000 NASM2017-10014 (cropped).jpg

Big mirrors are hard to build. They must be very strong. If they are too heavy, they might bend. This bend changes the shape. To fix this, some telescopes use segmented mirrors. These are many small parts used together. The Giant Magellan Telescope uses seven mirrors. Each one is 8.4 meters wide.

Some telescopes are very large. The Hubble Space Telescope has a 2.4 meter mirror. The Subaru telescope has an 8.2 meter mirror. Radio telescopes use even bigger dishes. The Arecibo Telescope had a 305 meter dish.

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A primary mirror is a very important part of a reflecting telescope. It is the main surface used to gather light.

James Webb Primary Mirror.jpg
James Webb Primary Mirror.jpg
Scientists call this part the objective. The mirror must be shaped in a special way. It can be a spherical or parabolic shape. Some mirrors are even hyperbolic. This shape helps the telescope collect light from far away. Without a good mirror, we could not see the stars clearly.

Making these mirrors involves many steps. In the past, makers used polished metal called speculum metal. Later, they began putting silver on top of glass.

A20010288000 NASM2017-10014 (cropped).jpg
A20010288000 NASM2017-10014 (cropped).jpg
Modern telescopes use a different way. They use vacuum deposited aluminum on glass. This means they put a thin layer of aluminum on glass inside a vacuum. This layer helps the mirror reflect light very well. The mirror must stay very smooth to work.

People have been building these for a long time. Isaac Newton made one of the first known reflectors in 1668. His mirror was made of polished metal. It was quite small at only 3.3 cm wide. In the 19th century, things began to change. The Crossley reflector used silver on glass. Later, the 200-inch Hale telescope used aluminum on glass. Each new step helped us see much further into space.

Big mirrors face a hard job. They must hold up their own weight. If a mirror is too big, gravity might make it bend. A bent mirror cannot see clearly. To solve this, some use segmented mirrors. These are many smaller pieces used together. The Giant Magellan Telescope will use seven 8.4 meter mirrors. This works like one huge 24.5 meter mirror. The Hubble Space Telescope uses a 2.4 meter mirror.

Many different telescopes exist today. The Subaru telescope has an 8.2 meter mirror. It is in Hawaii at the Mauna Kea Observatory.

LBT 3.JPG
LBT 3.JPG
The Large Binocular Telescope has two 8.4 meter mirrors. Radio telescopes are even larger than optical ones. The Arecibo Telescope used a huge 305 meter dish. The Green Bank Telescope has a 100 meter dish. These dishes help us listen to signals from space.

365 words

A primary mirror is the most important part of a reflecting telescope. It serves as the principal light-gathering surface, often called the objective. This component is vital because it collects light from distant objects in space. The mirror must be shaped into a specific disk to work correctly. These shapes can be spherical, parabolic, or hyperbolic.

James Webb Primary Mirror.jpg
James Webb Primary Mirror.jpg
By using these precise shapes, the telescope can focus light to create a clear image.

To work well, the mirror must be highly reflective. In the past, makers used a material called speculum metal. They would polish this metal into a disk to reflect light. Later, scientists changed how they made mirrors to get better results. They began using glass as a base instead of solid metal. They would then add a reflective layer on top of the glass. One method was using silver on glass, which was seen in the 19th-century Crossley reflector.

A20010288000 NASM2017-10014 (cropped).jpg
A20010288000 NASM2017-10014 (cropped).jpg
Modern telescopes often use vacuum deposited aluminum on glass. This process involves placing a thin layer of aluminum onto the glass inside a vacuum.

Building these mirrors has changed significantly over the centuries. One of the first known reflecting telescopes was Newton's reflector. Isaac Newton created this device in 1668. His primary mirror was made of polished metal and was quite small. It measured only 3.3 cm in diameter. As technology improved, mirrors became much larger and more precise. The 200-inch Hale telescope represented a major leap by using aluminum on glass. Each new material and method allowed astronomers to see much further into the universe.

There is a major physical limit to how large a single mirror can be. A solid primary mirror must be strong enough to sustain its own weight. It cannot deform or bend under the pull of gravity. If the mirror bends even slightly, it will not focus light correctly. To solve this problem, engineers use segmented mirror configurations. Instead of one huge piece, they use several smaller mirrors together.

LBT 3.JPG
LBT 3.JPG
This allows telescopes to reach much larger sizes than a single piece of glass would allow.

Different telescopes use different mirror setups depending on their goals. The Giant Magellan Telescope is a great example of segmented design. It will use seven 8.4 meter primary mirrors. When used together, they provide a resolving power equivalent to a 24.5 m (80.4 ft) optical aperture. The Hubble Space Telescope uses a single primary mirror that is 2.4 meters (7 feet 10 inches) wide.

A20010288000 NASM2017-10014 (cropped).jpg
A20010288000 NASM2017-10014 (cropped).jpg
Other large telescopes also use multiple mirrors to achieve high resolution.

Some of the world's largest telescopes use unique mirror arrangements. The Subaru telescope has an 8.2 m (27 ft) single mirror. It is located at the Mauna Kea Observatory in Hawaii and has been there since 1997. The Large Binocular Telescope uses two 8.4 m (28 ft) mirrors. These two mirrors can be used together in an interferometric mode. Additionally, the dual Keck telescope uses segmented primary mirrors that are 10 m in size. These different designs help scientists study different parts of the sky.

Radio and submillimeter telescopes work differently than optical telescopes. They use much larger dishes or antennae to collect signals. These dishes do not need to be as precisely shaped as optical mirrors. For example, the Arecibo Telescope used a massive 305 m dish. At one time, it was the world's largest single-dish radio telescope fixed to the ground. The Green Bank Telescope has a 100 m diameter dish. It is the world's largest steerable single radio dish. While radio arrays of multiple dishes have better resolution, they sometimes have less sensitivity than single dishes.

607 words
🖼️ Images & Media (3)
File:James Webb Primary Mirror.jpg
James Webb Primary Mirror.jpg
File:A20010288000 NASM2017-10014 (cropped).jpg
A20010288000 NASM2017-10014 (cropped).jpg
File:LBT 3.JPG
LBT 3.JPG
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