A star can have a ring. 
A star can have a ring around it. 
Young stars have these big rings. The ring holds the stuff that makes planets.
These rocks can grow into planets. This is how a new star system forms.
Sometimes the rings change over time. They can get thin or lose their gas.
Space is full of these amazing rings. They help us see how worlds begin.
A star can have a ring of material around it. This is called a circumstellar disc. 

Young stars often have big discs. These are called protoplanetary discs.
As time passes, the discs change. Some become transition discs. These have less gas and dust than the young ones. Other discs become debris discs. These are very thin and have almost no gas. They are made of dust from rocks hitting each other. 
Sometimes, a star is part of a pair. This is called a binary system. These stars can also have discs. A disc might orbit just one star. It might even orbit both stars at once. This is called a circumbinary disc.
A circumstellar disc is a ring of material that orbits a star. These discs can look like a torus, a pancake, or a simple ring. They are made of gas, dust, and small rocks called planetesimals. 

How does a disc form around a young star? It starts within a giant molecular cloud. Gravity causes a pocket of matter to collapse. As it falls inward, the material has angular momentum. This movement causes the gas to form a rotating disc around the new star.
Inside these discs, a slow change happens over time. Tiny grains of rock and ice begin to stick together. These grains grow into larger objects called planetesimals. If the disc has enough mass, these objects grow even faster. This can lead to the creation of planetary embryos. 
Sometimes, a star is part of a binary system with two stars. These systems can have different kinds of discs. A circumprimary disc orbits the more massive star. A circumsecondary disc orbits the less massive star. 
We can see these discs in our own space too. Our Solar System has a reservoir of small bodies called the asteroid belt. It sits between the orbits of Mars and Jupiter. Beyond Neptune, we find the Edgeworth-Kuiper belt. There is also a scattered disc and the Oort cloud. 
A circumstellar disc is a rotating structure of matter that orbits a star. These discs can take many shapes, such as a torus, a ring, or a pancake. They are composed of various materials, including gas, dust, planetesimals, asteroids, or fragments from collisions. 
The formation process begins within a giant molecular cloud. According to the nebular hypothesis, a young star, or protostar, forms when a pocket of matter collapses due to gravity. As this material falls inward, it possesses angular momentum, which is a property of rotating objects. This momentum causes the infalling gas to flatten into a rotating protoplanetary disc around the new star.
As the disc evolves, it moves through several distinct stages. First, the protoplanetary disc stage features massive amounts of primordial gas and dust. During this phase, small dust grains made of rock and ice begin to coagulate into larger planetesimals. 
In binary star systems, the presence of two stars creates more complex disc types. A circumprimary disc orbits the more massive star of the pair. A circumsecondary disc orbits the less massive star, though this requires a high level of angular momentum in the infalling gas. 
Accretion in these systems is not always a steady process. In circumbinary discs, the rate of material falling into the inner cavity varies. For non-eccentric binaries, this variability follows the Keplerian orbital period of the inner gas. For eccentric binaries, the variability matches the binary's own orbital period. This happens because each star component "scoops" matter from the disc at the apocenter of its orbit. 
Discs can also become misaligned with the plane of the binary system. While most discs are axisymmetric to the binary plane, certain forces can cause a warp or tilt. These forces include the Bardeen-Petterson effect, radiation pressure, or a misaligned dipole magnetic field. 
We can observe the remnants of these processes within our own Solar System. Our system contains several reservoirs of small bodies, such as the asteroid belt between Mars and Jupiter. Beyond Neptune, we find the Edgeworth-Kuiper belt and the scattered disc. 
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