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Hayashi track

space Maturity 9-11

Baby stars go through changes.

PMS evolution tracks.svg
PMS evolution tracks.svg
They start very bright. Then they get dimmer. They stay about the same heat. This helps them grow up. Do you like looking at stars?

33 words

Baby stars go through changes.

PMS evolution tracks.svg
PMS evolution tracks.svg
They start out very bright. Then they slowly get dimmer. They stay about the same heat. This path is called the Hayashi track.
T Tauri tracks.png
T Tauri tracks.png
A star moves down this path as it gets smaller. It does this by moving gas inside. This helps the star grow up. It is amazing to think about stars growing!
Ngc 2264.png
Ngc 2264.png

67 words

Baby stars go through a special stage of growth.

PMS evolution tracks.svg
PMS evolution tracks.svg
This stage is called the pre-main-sequence phase. One important part of this time is the Hayashi track. It is named after a scientist named Chushiro Hayashi.
T Tauri tracks.png
T Tauri tracks.png

Stars start as protostars. These form when clouds of gas collapse. As they shrink, they get hot and bright. Eventually, they become T Tauri stars. These stars follow the Hayashi track. On a special chart, this track looks like a nearly vertical line.

As a star follows this track, it changes in a steady way. The star slowly shrinks. Because it gets smaller, it gives off less light. It becomes less luminous. But the star stays at about the same heat.

Ngc 2264.png
Ngc 2264.png

During this time, the star is fully convective. This means gas moves in circles from the inside to the outside. This movement helps carry power through the star. Small stars stay this way until they grow up. Larger stars develop a radiative zone. A radiative zone is a part where light carries the power instead of moving gas. Then, the star starts a new path.

189 words

Baby stars go through a very important stage of growth. This period is called the pre-main-sequence phase. One key part of this time is the Hayashi track.

PMS evolution tracks.svg
PMS evolution tracks.svg
This track describes how young stars change as they grow. It shows the link between a star's brightness and its temperature. Scientists use a special chart called the Hertzsprung–Russell diagram to see this. On this chart, the Hayashi track looks like a nearly vertical line. This path helps us understand how stars settle into their adult lives.

Stars begin their lives as protostars inside giant clouds of gas. Gravity pulls the gas together, which makes the protostar shrink and heat up.

T Tauri tracks.png
T Tauri tracks.png
After about 100,000 years, the star reaches a temperature of about 4000 K. At this point, it becomes a T Tauri star. The star is now on the Hayashi track. It starts to shrink much more slowly than before. As it gets smaller, it has less surface area to give off light. This means the star becomes less luminous, or less bright. However, the surface temperature stays mostly the same during this time.

We owe our understanding of this process to Chushiro Hayashi. He was a Japanese astrophysicist who lived from 1920 to 2010. In 1961, he published two important papers about how stars grow.

Ngc 2264.png
Ngc 2264.png
Before his work, many models did not explain how stars move. Hayashi realized that thick convection zones are a big part of a star's inside. Convection is a way that energy moves through a star using rising and falling gas. He showed that stars follow a specific curve on the chart. In 1962, he even wrote a very long review about how stars evolve.

Different stars follow different paths based on how much mass they have.

T Tauri tracks.png
T Tauri tracks.png
Small stars with less than 0.5 solar masses stay fully convective. They follow the Hayashi track all the way until they start nuclear fusion. Stars between 0.5 and 3 solar masses are a bit different. They develop a radiative zone, where light carries the energy instead of moving gas. Once this happens, they move onto the Henyey track. Very heavy stars are born directly onto the main sequence. They do not spend time on the Hayashi track at all.

Understanding these tracks helps us study very old star clusters. For example, scientists looked at a young cluster called NGC2264.

Ngc 2264.png
Ngc 2264.png
The stars in this cluster fit the models Hayashi created very well. This proves that his ideas about shrinking T Tauri stars were correct. You can think of the Hayashi track like a path a traveler must follow. The star must move along this line to stay stable. If a star is in the "forbidden zone" to the right, it will quickly move back to the track. This keeps the star in a steady state as it grows.

479 words

The Hayashi track is a specific relationship between luminosity and temperature. It describes the path infant stars follow during their pre-main-sequence (PMS) phase. This phase occurs after a protostar finishes its initial rapid contraction.

PMS evolution tracks.svg
PMS evolution tracks.svg
The track appears as a nearly vertical curve on the Hertzsprung–Russell (HR) diagram. This diagram is a tool used to plot a star's brightness against its surface temperature. Understanding this track is vital for astronomers studying how stars evolve from clouds of gas into stable suns. It represents a state of stability for young, low-mass stars.

Stars begin as protostars within giant molecular clouds. Gravity causes these regions to collapse, which releases gravitational energy. This energy heats the protostar during a process called free fall. For a star with the mass of our Sun, this takes roughly 100,000 years. Once the temperature reaches about 4000 K, the star reaches the Hayashi boundary.

T Tauri tracks.png
T Tauri tracks.png
At this point, the object is known as a T Tauri star. It begins to follow the Hayashi track, contracting much more slowly than before. As the star shrinks, its surface area decreases. Because it has less area to emit light, its luminosity drops significantly. However, its surface temperature remains relatively constant during this descent.

This movement is driven by the way energy moves through the star. Stars on the Hayashi track are nearly fully convective. Convection is a process where hot gas rises and cooler gas sinks. This happens because these young stars are cool and highly opaque. Opacity refers to how much a material resists the flow of energy. In these stars, hydrogen ions dominate the opacity. Because the gas is so opaque, radiation cannot easily carry the energy away. Instead, the star must use convection to move heat from the inside to the surface.

There is a specific region on the HR diagram called the forbidden zone. This zone lies to the right of the Hayashi track. No star can exist here in a state of hydrostatic equilibrium. Hydrostatic equilibrium is a balance between gravity pulling inward and pressure pushing outward. If a star enters this zone, it develops a superadiabatic temperature gradient. This means the temperature changes too sharply with distance from the center.

PMS evolution tracks.svg
PMS evolution tracks.svg
Such a gradient causes rapid, unstable convection. This convection quickly moves the star back toward the stable Hayashi track.

We understand this process thanks to the Japanese astrophysicist Chushiro Hayashi. He lived from 1920 to 2010 and changed how we view stellar beginnings. In 1961, he published two papers that established the concept of the pre-main-sequence phase. Before Hayashi, models assumed stars were in radiative equilibrium. This meant they assumed energy moved mostly through light rather than moving gas. Hayashi realized that thick convection zones were actually necessary to explain star behavior. In 1962, he published a massive 183-page review of stellar evolution. His work allowed scientists to use star clusters to test these theories.

A star's mass determines exactly which path it takes.

T Tauri tracks.png
T Tauri tracks.png
Stars with less than 0.5 solar masses stay fully convective. They follow the Hayashi track until they begin nuclear fusion. Stars between 0.5 and 3 solar masses are more complex. They eventually develop a radiative zone, where energy moves via radiation. When this happens, they leave the Hayashi track and follow the Henyey track. This Henyey track is a path of increasing temperature at nearly constant luminosity. Even heavier stars skip the Hayashi track entirely. They are born directly onto the main sequence.

Scientists have used these models to study real star clusters. One notable example is the very young cluster NGC2264.

Ngc 2264.png
Ngc 2264.png
The stars in this cluster fit the isochrones predicted by Hayashi's models. An isochrone is a line on the HR diagram representing stars of the same age. By observing NGC2264, astronomers confirmed that these stars are rapidly contracting T Tauri stars. This evidence supports the entire framework of pre-main-sequence evolution. It connects the physics of gas and gravity to the visible life cycles of the stars we see in the sky.

675 words
🖼️ Images & Media (4)
File:PMS evolution tracks.svg
PMS evolution tracks.svg
File:Hayashi composition.png
Hayashi composition.png
File:Ngc 2264.png
Ngc 2264.png
File:T Tauri tracks.png
T Tauri tracks.png
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