Saturn has a giant force field. 

Saturn has a giant force field. 
A small moon named Enceladus helps the field. This moon shoots water out of its poles. The water becomes part of the field.
This field also makes bright lights. These lights glow around the top and bottom. 
Saturn has a giant magnetic field. 
This field comes from inside the planet. It is made by liquid metal deep down. 
When the solar wind hits the field, it makes lights. We call these aurorae. They glow around the poles of the planet. 
Saturn has a giant invisible shield called a magnetosphere. 

The magnetic field starts deep inside the planet. It is made by a fluid dynamo. This happens in a layer of liquid metallic hydrogen near the core. 
Scientists have been studying this shield for a long time. In 1974, they heard weak radio signals from the planet. This was the first hint of a magnetic field. However, the evidence was not strong enough yet. 
Many things fill the space inside this shield. One major source is a small moon named Enceladus. This moon has geysers at its south pole. These geysers shoot out as much as 1,000 kg/s of water vapor. Some of this water becomes plasma, which is a gas of charged particles. This plasma gets caught in the magnetic field. It can even form radiation belts. These belts hold particles with very high energy. These particles can change the surfaces of Saturn's icy moons.
You can actually see the magnetosphere working through light. When the solar wind hits the shield, it creates bright lights. These are called aurorae. They appear as glowing ovals around the planet's poles. 

Saturn's magnetosphere is a massive, invisible cavity in space. 
The magnetic field begins deep within Saturn's interior. It is generated by a process called a fluid dynamo. This occurs within a layer of circulating liquid metallic hydrogen near the core. 
The structure of the magnetosphere has several distinct parts. The innermost region is located within 3 Saturn radii of the planet. It is mostly empty of plasma because ring particles absorb it. Just outside the rings, radiation belts hold high-energy particles. The second region is the inner magnetosphere, located between 3 and 6 Saturn radii. This area contains the densest plasma in the system. The third region is a dynamic plasma sheet between 6 and 14 Saturn radii. Here, the magnetic field becomes stretched and non-dipolar. Finally, the outermost region extends to the magnetopause boundary. 
Scientists have worked for decades to understand this system. In 1955, researchers tried to find radio emissions like those from Jupiter. They found nothing certain at first. In 1974, weak radio emissions were detected at 1 MHz. This suggested a magnetic field existed, but the evidence was not yet conclusive. Some scientists even thought Saturn might not have a field at all. The first direct proof arrived on September 1, 1979. The Pioneer 11 spacecraft flew through the field and measured its strength. 
Plasma is the primary material filling this space. Much of it comes from Saturn's moons. The moon Enceladus is the most important source. Geysers at its south pole eject up to 1,000 kg/s of water vapor. Some of this material becomes ionized, meaning it gains an electric charge. This creates water group ions like O+ and OH+. These ions are forced to co-rotate with Saturn's magnetic field. This process is called mass-loading. At least 100 kg of these ions are added to the magnetosphere every second. Other ions come from Saturn's rings and other icy moons.
Saturn's magnetosphere also creates beautiful light shows. When the solar wind interacts with the magnetic field, it creates aurorae. These appear as bright, glowing ovals around the planet's poles. 

The magnetosphere also has a unique shape. On the side facing the Sun, the boundary is called the magnetopause. This boundary stays at an average distance of 22 Saturn radii. On the opposite side, the solar wind stretches the field into a long magnetotail. 
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