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Stellar evolution

space Maturity 9-11 evolution
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Stars change over a long time.

Starlifesimple.png
Starlifesimple.png
They start as clouds of dust. Then they grow into bright stars. They make light for us. This helps us see the sky. Do you like to look at stars?

37 words

Stars change as they grow older.

Starlifesimple.png
Starlifesimple.png
They start in clouds of gas and dust. The gas gets hot and forms a star.
The life of Sun-like stars.jpg
The life of Sun-like stars.jpg
Most stars make energy from tiny parts of gas. This keeps the star bright for a long time. Some stars grow very large and red.
The life cycle of a Sun-like star (annotated).jpg
The life cycle of a Sun-like star (annotated).jpg
Small stars live for a very long time. Big stars can end with a huge blast. Every star has a special life story.

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Stars change as they grow older. This is called stellar evolution.

Starlifesimple.png
Starlifesimple.png
All stars start in giant clouds of gas and dust. These clouds are called nebulae. As the gas falls inward, it gets very hot. It forms a spinning ball called a protostar.
The life of Sun-like stars.jpg
The life of Sun-like stars.jpg

A star stays stable through nuclear fusion. This is a way stars make power. In most stars, they fuse hydrogen atoms in their core. This keeps the star bright for a long time. The Sun is a mid-sized star. It will stay like this for about 10 billion years.

When a star runs out of hydrogen, it changes. It may grow into a red giant. These stars are very large and red.

The life cycle of a Sun-like star (annotated).jpg
The life cycle of a Sun-like star (annotated).jpg
Smaller stars like the Sun end as white dwarfs. These are small, dense cores. Massive stars end differently. They can explode in a supernova. This big blast can leave behind a neutron star or a black hole.
Black hole - Messier 87.jpg
Black hole - Messier 87.jpg
Scientists study these changes by looking at many different stars.

181 words

Stars are not the same forever. They change over very long periods of time. This process is called stellar evolution.

Starlifesimple.png
Starlifesimple.png
A star's life depends on its mass. Mass is how much matter is in the star. Some stars live for only a few million years. These are the most massive stars. Other stars can live for trillions of years. These small stars live much longer than the universe has even existed.
Triangle of everything - Stellar Evolution.png
Triangle of everything - Stellar Evolution.png

Everything starts in a giant cloud of gas and dust. These clouds are often called nebulae. As gravity pulls the cloud together, it breaks into smaller pieces. Each piece gets hotter and more crowded. Eventually, a piece becomes a spinning ball of superhot gas. This is called a protostar.

The life of Sun-like stars.jpg
The life of Sun-like stars.jpg
A protostar grows by pulling in more gas and dust. If the protostar is not heavy enough, it becomes a brown dwarf. Brown dwarfs are dim and cool down slowly over time.

Most stars spend their lives in a stable state. This is called the main sequence.

Star types.svg
Star types.svg
Inside the core, a process called nuclear fusion happens. This is how stars make energy. In most stars, hydrogen atoms fuse to create helium. This creates outward pressure. This pressure balances the weight of the star. This balance is called hydrostatic equilibrium. It stops the star from collapsing under its own weight.

Stars change when they run out of hydrogen fuel. A star like our Sun will eventually grow much larger. It enters a stage called a red giant.

The life cycle of a Sun-like star (annotated).jpg
The life cycle of a Sun-like star (annotated).jpg
During this time, the star fuses hydrogen in a shell around its core. Some red giants, like Aldebaran, are very large and bright. After this, a mid-sized star might shed its outer layers. This creates a beautiful cloud called a planetary nebula.
NGC6543.jpg
NGC6543.jpg
The leftover core becomes a small, dense white dwarf.

Very large stars have a much more intense ending. They can explode in a massive blast called a supernova.

Crab Nebula.jpg
Crab Nebula.jpg
This happens when their heavy iron cores collapse. A supernova can leave behind a neutron star. It can also create a black hole.
Black hole - Messier 87.jpg
Black hole - Messier 87.jpg
Scientists cannot watch one star change because it happens too slowly. Instead, they look at many different stars. They also use computer models to study how stars work. This helps them understand the whole history of the sky.

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Stellar evolution is the process by which a star changes over time. A star's entire life cycle is determined primarily by its mass. This mass dictates how long a star will live and how it will eventually die. Massive stars may live for only a few million years. In contrast, the least massive stars can live for trillions of years. This duration is much longer than the current age of the universe.

Starlifesimple.png
Starlifesimple.png
Astrophysicists cannot observe a single star changing because these processes are too slow. Instead, they study many stars at different life stages and use computer models to simulate stellar structures.

Stars begin their lives inside giant molecular clouds. These clouds are huge collections of gas and dust, often called nebulae. Gravity causes these clouds to collapse into smaller fragments. As a fragment collapses, it releases gravitational potential energy as heat. This causes the temperature and pressure to rise. Eventually, the fragment becomes a rotating ball of superhot gas called a protostar.

The life of Sun-like stars.jpg
The life of Sun-like stars.jpg
A protostar continues to grow by pulling in more gas and dust through accretion. If a protostar has a mass less than roughly 0.08 solar masses, it will never get hot enough for hydrogen fusion. These objects are known as brown dwarfs. They shine dimly and cool down over hundreds of millions of years.

For more massive protostars, the core temperature eventually reaches 10 million Kelvin. This heat triggers nuclear fusion, where hydrogen atoms fuse into helium. This process creates an outward radiation pressure. This pressure balances the inward pull of gravity, a state called hydrostatic equilibrium.

Star types.svg
Star types.svg
Once this balance is reached, the star enters the main sequence phase. Small, cool stars called red dwarfs stay on the main sequence for hundreds of billions of years. Mid-sized stars, like our Sun, stay on the main sequence for about 10 billion years. Massive, hot O-type stars leave the main sequence after only a few million years.

When a star exhausts the hydrogen in its core, it begins to evolve off the main sequence. The core contracts because there is no longer enough outward pressure to fight gravity. In mid-sized stars, this leads to a subgiant phase. During this stage, the star begins to fuse hydrogen in a shell surrounding the core. This causes the star to expand and cool. Eventually, the star reaches the red-giant phase.

The life cycle of a Sun-like star (annotated).jpg
The life cycle of a Sun-like star (annotated).jpg
Red giants are large and can be seen as stars like Aldebaran or Arcturus.

Mid-sized stars, which have at least half the mass of the Sun, can eventually fuse helium in their cores. In stars between 0.6 and 2.0 solar masses, helium fusion often ignites suddenly in a helium flash. These stars move through different stages, such as the horizontal branch. On the horizontal branch, they may be classified as red clump giants. Some stars also enter the asymptotic-giant-branch phase. This stage involves an inert carbon core and shells of helium and hydrogen burning.

Evolutionary track 1m.svg
Evolutionary track 1m.svg

After a Sun-like star uses up its nuclear fuel, its life ends in a relatively gentle way. The outer layers are expelled into space, forming a planetary nebula.

NGC6543.jpg
NGC6543.jpg
The remaining core collapses into a very dense object called a white dwarf. However, stars with much higher masses face a more violent end. When a massive star develops an inert iron core, the core collapses suddenly. This collapse triggers a massive explosion known as a supernova.
Crab Nebula.jpg
Crab Nebula.jpg
A supernova can leave behind an extremely dense neutron star or even a black hole.
Black hole - Messier 87.jpg
Black hole - Messier 87.jpg

Stellar evolution connects many different areas of science. It links the chemistry of the universe to the physics of gravity and nuclear reactions. The heavy elements created inside stars are released during their deaths. These elements eventually become part of new molecular clouds. This cycle allows for the formation of new stars, planets, and complex systems. By studying how stars change, scientists learn about the history and the future of the entire cosmos.

672 words
🖼️ Images & Media (15)
File:Triangle of everything - Stellar Evolution.png
Triangle of everything - Stellar Evolution.png
File:Starlifesimple.png
Starlifesimple.png
File:Stellar evolution L vs T.png
Stellar evolution L vs T.png
File:The violent youth of solar proxies.jpg
The violent youth of solar proxies.jpg
File:Star types.svg
Star types.svg
File:Evolutionary track 1m.svg
Evolutionary track 1m.svg
File:The life of Sun-like stars.jpg
The life of Sun-like stars.jpg
File:The life cycle of a Sun-like star (annotated).jpg
The life cycle of a Sun-like star (annotated).jpg
File:NGC6543.jpg
NGC6543.jpg
File:VLTI reconstructed view of the surface of Antares.jpg
VLTI reconstructed view of the surface of...
File:Evolved star fusion shells.svg
Evolved star fusion shells.svg
File:Crab Nebula.jpg
Crab Nebula.jpg

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