A big storm has a center. 
A big storm has a center. 
Around the eye is a ring. This ring has strong storms. It is called the eyewall.
The air in the eye is warm. The air pressure is very low here. This is the lowest point in the storm. 
A tropical cyclone is a huge storm. It has a center called the eye. 
Sometimes, the eye changes size. A storm can have a tiny "pinhole eye." These are very small and circular. Other storms have very large eyes. 

A tropical cyclone is a huge and powerful storm. At its very center is a special area called the eye. The eye is a roughly circular place with mostly calm weather. It is surrounded by a ring called the eyewall. This eyewall is where the most severe weather lives. It contains the highest winds and the heaviest rain. Inside the eye, the air pressure is at its lowest. This pressure can be 15 percent lower than the air outside.
How does this calm center form? It starts with disorganized weather over warm ocean waters. As thunderstorms gather, they begin to rotate around a center. This creates a ring of strong storms called the eyewall. High pressure builds up in the air far above the storm. Most of this air flows outward, but some flows inward. This inward air causes the pressure at the surface to drop even more. Eventually, air begins to sink in the middle. This sinking air creates a rain-free area known as the eye.
Scientists have studied these storms for a long time. They use many tools to see what is happening inside. Weather satellites take pictures of the clouds from space. Some eyes are clear, but others are filled with clouds. In the United States, people use NEXRAD Doppler weather radar to find eyes. Researchers also use ships and hurricane hunters to see the wind. These hunters can fly right into the storm to measure it. They can see the eye by looking for a drop in wind speed.
Eyes can be many different sizes. A typical eye is 30 to 65 kilometers across. 

Storms can also change how they look through natural cycles. An intense storm might go through an eyewall replacement cycle. This happens when a new ring of storms forms outside the old one. 

The eye of a tropical cyclone is a central region of mostly calm weather. It is a roughly circular area located at the geometric center of the storm. 
To understand how an eye forms, we must look at the mechanics of a developing cyclone. These storms often begin as disorganized areas of disturbed weather over warm ocean waters. As thunderstorms gather, they develop rainbands that rotate around a common center. As the storm gains strength, a ring of intense convection forms. This convection creates strong updrafts that cause the barometric pressure at the surface to drop.
Eyes come in many different shapes and sizes. A typical mature tropical cyclone has an eye approximately 30 to 65 kilometers across. 

Intense tropical cyclones often undergo a process called an eyewall replacement cycle. This occurs in major hurricanes with winds greater than 185 kilometers per hour. During this cycle, a new outer eyewall forms from outer rainbands. This new ring moves inward and robs the inner eyewall of moisture and angular momentum. As the outer wall chokes the inner wall, the storm usually weakens. Eventually, the outer eyewall replaces the inner one, and the storm can re-intensify. Research shows that 53 percent of intense hurricanes undergo at least one of these cycles. This natural process was once misunderstood during the U.S. government's Project Stormfury, which tried to modify storms by seeding clouds.
Scientists use several methods to detect and study these eyes. For storms with clear eyes, weather satellites provide easy identification. However, for filled eyes, researchers must use other tools. Ships and "hurricane hunters" can visually pinpoint an eye by observing drops in wind speed or rainfall. In the United States and South Korea, NEXRAD Doppler weather radar stations can detect eyes near the coast. Scientists also use satellite equipment to measure atmospheric water vapor and cloud temperatures. Interestingly, the amount of ozone in the eye is much higher than in the eyewall. This is because air from the ozone-rich stratosphere sinks into the center of the storm.
There are several unique phenomena associated with the eye and eyewall. In very strong storms, the clouds of the eyewall may curve outward as they rise. This is called the "stadium effect," which makes the eye look like a sports stadium from above. 

Understanding the eye is vital for forecasting the intensity of tropical cyclones. Observations of eye shape and size are used in Dvorak analysis to estimate storm strength. Because pinhole eyes cause large fluctuations in intensity, they can be difficult for forecasters to predict. By studying the relationship between the calm eye and the violent eyewall, meteorologists gain a better understanding of the entire cyclone system. This knowledge helps protect people living in the paths of these powerful natural events.
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