A mount holds a telescope. 

A mount holds a telescope. 


A telescope mount is a strong base. 
Some mounts do not move at all. These are called fixed mounts. They stay in one spot. Other mounts only move in certain ways. A transit mount moves up and down. It stays in one place side to side. This helps it see stars as they cross a line in the sky.
Altazimuth mounts are very common. 
Equatorial mounts are different. 
A telescope mount is a strong mechanical structure. 
There are many ways these structures work. Fixed mounts stay in one position and do not move. 

History shows how these designs have changed over time. 
Some mounts are very specialized for big jobs. 
Think of a telescope mount like the base of a camera tripod. A tripod holds your camera steady so your pictures are not blurry. A telescope mount does the same thing for a huge instrument. It keeps the telescope steady while it looks at distant stars. Some mounts act like a steady hand following a bird in flight. Others act like a fixed window looking at one part of a garden. Each type of mount helps us see our universe more clearly.
A telescope mount is a mechanical structure designed to support a telescope. 
Fixed mounts are designed to stay in one permanent position. 
Transit mounts are another specialized type of fixed structure. They are fixed in azimuth but can rotate in altitude. Most transit mounts are oriented on a north-south axis. This allows the telescope to view the entire sky. The telescope can only see objects when they cross a specific line. This line is called the meridian. Transit telescopes use this method for precision astronomical measurement. These mounts are also useful for saving on costs. They are helpful when the mass of the instrument makes multi-axis movement difficult. Large radio telescopes often use this type of mounting.
Altazimuth mounts, also called alt-az mounts, allow for two separate motions. The telescope can move in altitude, or up and down. It can also move in azimuth, or side to side. 
Despite their popularity, altazimuth mounts have specific mechanical limitations. The field-of-view rotates at a varying speed as the telescope tracks. The telescope body itself does not rotate. This requires a counter-rotation system for astrophotography or imaging. There is also a blind spot known as a "zenith hole." 
Alt-alt mounts, or altitude-altitude mounts, offer a different solution. These designs are similar to Cardan suspension gimbals.
Equatorial mounts use a different mechanical approach to track the sky. These mounts have a north-south polar axis. This axis is tilted to be parallel to Earth's polar axis. 
Equatorial mounts require significant engineering due to their complexity. Tilting the polar axis adds difficulty to the design. Some mounts, like fork or yoke mounts, must support one or both ends of the axis. German equatorial mounts also require large counterweights. These weights balance the heavy mass of the telescope. Because they are so large, they require big domes for coverage. This mechanical size makes them less viable for very large telescopes. Most modern large research telescopes have replaced them with altazimuth mounts. Some modern systems use a hexapod. This uses six extendable struts to support the mirror. This allows movement in all six spatial degrees of freedom.
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