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CW Leonis

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A big star is far away.

CW Leonis - HST - Heic2112a.jpg
CW Leonis - HST - Heic2112a.jpg
It hides in a thick cloud of dust. The star is very bright. It is also very red. It is blowing off its own skin. This star is a special sight. Can you look for it?

43 words

A special star is far away.

CW Leonis - HST - Heic2112a.jpg
CW Leonis - HST - Heic2112a.jpg

It is hidden by a thick cloud of dust. This star is very red. It is also very bright.

CWLeoLightCurve.png
CWLeoLightCurve.png

The star is in a late stage of its life. It is blowing off its own skin. This skin is made of dark soot.

This star moves fast through space. It is the closest star of its kind to Earth. It is a very amazing sight to see.

75 words

CW Leonis is a special kind of star. It is a carbon star. This means it has lots of carbon.

CW Leonis - HST - Heic2112a.jpg
CW Leonis - HST - Heic2112a.jpg
It is hidden by a thick cloud of dust. This dust is like a heavy shroud. The star is in a late stage of its life. It is blowing off its own atmosphere. This atmosphere is made of dark soot. This soot will one day form a white dwarf. A white dwarf is a small, dense star.

The star changes in brightness. It has a pulsation cycle of 649 days. This means it grows bright and dim in a set way.

CWLeoLightCurve.png
CWLeoLightCurve.png
It is very bright. It can be 15,800 times brighter than our Sun. Scientists study it using infrared light. Infrared light is a type of light we cannot see. It shows up as heat.

The dust cloud is very big. It is at least 69,000 years old. It has many parts like arcs and shells.

CW Leonis UV.jpg
CW Leonis UV.jpg
Scientists found many things in the dust. They found water, oxygen, and iron. CW Leonis is the closest carbon star to Earth.

183 words

CW Leonis is a very special type of star. It is known as a variable carbon star. This means its brightness changes over time. It is also hidden inside a thick envelope of dust. This dust acts like a heavy shroud around the star. Scientists believe the star is in a late stage of its life. It is blowing off its own sooty atmosphere. This process will eventually form a white dwarf. A white dwarf is a small and dense star.

CW Leonis - HST - Heic2112a.jpg
CW Leonis - HST - Heic2112a.jpg

The star works by pulsing in a steady way. It has a pulsation cycle that lasts 649 days. During this time, its brightness goes up and down. It can be 6,250 times brighter than our Sun. At its peak, it reaches 15,800 times the Sun's brightness. Most of its energy comes out as infrared light. This is a type of light we cannot see with our eyes. We can think of it as heat energy.

CWLeoLightCurve.png
CWLeoLightCurve.png

Astronomers first found this star in 1969. A group led by Eric Becklin discovered it. They used the 62-inch Caltech Infrared Telescope. This telescope was located at the Mount Wilson Observatory. They looked at the star using infrared observations. This helped them see through the thick dust. It is a very important object for studying stars.

CW Leonis UV.jpg
CW Leonis UV.jpg

There are many interesting facts about CW Leonis. The dust cloud around it is at least 69,000 years old. This envelope contains at least 1.4 solar masses of material. The star is losing about one solar mass every year. Scientists have found 50 different molecules in the outflows. These include nitrogen, oxygen, water, silicon, and iron. The star is also the closest carbon star to Earth.

CW Leonis UV.jpg
CW Leonis UV.jpg

You can compare this star to things in our own solar system. The star moves through space at over 91 km/s. Its surrounding area is huge. If the star is 120 pc away, its area spans 84,000 AU. This is much larger than the paths planets take. The star might even have a close companion star nearby. This could be part of a binary system. Watching this star helps us learn how stars change.

CW Leonis UV.jpg
CW Leonis UV.jpg

363 words

CW Leonis, also known as IRC +10216, is a remarkable variable carbon star. It is currently hidden inside a very thick envelope of dust. This star is a vital subject for astronomers studying how stars change. It is believed to be in a late stage of its life cycle. The star is currently blowing off its own sooty atmosphere. Eventually, this process will result in the formation of a white dwarf. A white dwarf is a small, dense remnant of a star.

CW Leonis - HST - Heic2112a.jpg
CW Leonis - HST - Heic2112a.jpg

The star functions through a process called pulsation. It follows a regular pulsation cycle that lasts 649 days. During this cycle, the star's bolometric luminosity, or total energy output, changes significantly. The luminosity ranges from a minimum of about 6,250 times the luminosity of our Sun. At its peak, the output reaches approximately 15,800 times the Sun's luminosity. This variation causes the star's brightness to change by about two magnitudes. Because the star is very red, scientists often study it using infrared wavelengths.

CWLeoLightCurve.png
CWLeoLightCurve.png

The physical structure surrounding the star is quite complex. CW Leonis is embedded in a large, carbon-rich gaseous envelope. This dust envelope is at least 69,000 years old. It contains at least 1.4 solar masses of material. Observations from 1999 using speckle techniques revealed a complex structure within this dust. The envelope includes partial arcs and unfinished shells. This clumpiness might be caused by a magnetic cycle within the star. Such a cycle could be similar to the solar cycle seen in our Sun. This cycle may lead to periodic increases in mass loss.

Astronomers first identified this object in 1969. A team led by Eric Becklin made the discovery. They used infrared observations from the 62-inch Caltech Infrared Telescope. This telescope was located at the Mount Wilson Observatory. The star is particularly notable for its energy emission. At a wavelength of 5 μm, it has the highest flux of any object outside our Solar System. This high flux makes it a primary target for infrared astronomy.

CW Leonis UV.jpg
CW Leonis UV.jpg

We can learn a lot about the star's history from its mass. Based on the isotope ratios of magnesium, scientists have estimated its original size. The initial mass of the star was likely between 3 and 5 solar masses. However, the star is losing mass rapidly. It is losing about one solar mass per year. The core of the star is much smaller than its original size. The core mass is estimated to be between 0.7 and 0.9 solar masses. This core will eventually become the white dwarf.

CWLeoLightCurve.png
CWLeoLightCurve.png

Chemical analysis of the outflows from CW Leonis shows incredible variety. Scientists have detected about 50 different molecules in these outflows. These include elements such as nitrogen, oxygen, silicon, and iron. Water has also been detected in these outflows. One old theory suggested that comets melted as the star expanded. However, scientists now believe water forms naturally in the atmospheres of all carbon stars. This discovery helps us understand the chemistry of dying stars.

CW Leonis UV.jpg
CW Leonis UV.jpg

CW Leonis is also a very fast-moving object in space. It travels through the interstellar medium at a velocity of more than 91 km/s. If we assume the distance to the star is 120 pc, its astrosphere is enormous. The radius of this surrounding area would span about 84,000 AU. Additionally, some research suggests the star may have a close binary companion. Measurements from ALMA and astrometric data show possible orbital motion. This suggests the star might not be alone in its system. These studies also indicate that CW Leonis is the closest carbon star to Earth.

CW Leonis - HST - Heic2112a.jpg
CW Leonis - HST - Heic2112a.jpg

601 words
🖼️ Images & Media (3)
File:CW Leonis UV.jpg
CW Leonis UV.jpg
File:CWLeoLightCurve.png
CWLeoLightCurve.png
File:CW_Leonis_-_HST_-_Heic2112a.jpg
CW_Leonis_-_HST_-_Heic2112a.jpg
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