A giant star shines far away. 
A giant star shines far away. 
It is very bright. It shines two million times more than our sun. It is also very big. It might be two stars joined together.
This star sits in a large group of stars. This group is part of a big cloud. The star has a strong wind. This wind powers the cloud.
Dust in space hides the star from us. We use special tools to see it. These tools look for heat light.
Space is full of big surprises. 
LBV 1806−20 is a very bright star. 
We cannot see it with our eyes. Thick dust in space hides the star. This dust blocks most of its light. Scientists use infrared telescopes to see it. These tools look for heat light instead of visible light.
Some people think it is a binary star. A binary star is two stars joined together. This might explain why the star seems so strange. It sits in a large group of stars. This group is called an open cluster. 
The star has a strong stellar wind. This is a stream of gas moving away from the star. This wind helps power a large cloud of gas. We call this cloud a radio nebula. The star is a candidate for being a luminous blue variable. This is a type of star that changes in brightness. Scientists are still studying it to be sure.
LBV 1806−20 is a very bright star. 
We cannot see it with our eyes. Thick dust in space hides the star. This dust blocks most of its light. Less than one billionth of its visible light reaches us. Scientists use infrared telescopes to see it. These tools look for heat light instead of visible light. This is because dust absorbs 35 magnitudes of light at visual wavelengths.
Some people think it is a binary star. A binary star is two stars joined together. This might explain why the star seems so strange. It sits in a large group of stars. This group is called an open cluster. This cluster is part of W31. W31 is one of the largest H II regions in the Milky Way. 
Scientists first found this star in the Sagittarius constellation. At first, it seemed like the most massive star known. This made it a hard job for scientists to understand. Now, recent estimates place it closer to Earth. This means it fits within the expected range for bright stars. It is at the core of the radio nebula G10.0–0.3. The star's wind likely powers this nebula.
The star might be a luminous blue variable. This is a star that changes in brightness. We call it a candidate because we have not seen these changes yet. Its light shows lines of hydrogen and helium. It also shows lines of iron, magnesium, and sodium. Some of these lines look doubled. This is one reason scientists think there are two stars. The star's type is likely between O9 and B2.
LBV 1806−20 is a massive and incredibly bright star system. 
Observing this star is very difficult due to cosmic obstacles. Huge amounts of intervening dust sit between us and the Galactic Center. This dust absorbs about 35 magnitudes of light at visual wavelengths. Because of this, less than one billionth of its visible light reaches Earth. To see through the dust, astronomers must use infrared telescopes. These tools detect heat-based light rather than the visible light our eyes see. This allows scientists to study the star despite the thick cosmic clouds.
LBV 1806−20 has several unique physical properties. It has an estimated mass of about 36 solar masses. This means it is 36 times heavier than our Sun. Its luminosity is also extreme. The star shines with a brightness around two million times that of the Sun. It sits at the core of a radio nebula called G10.0–0.3. Scientists believe the star's powerful stellar wind provides the energy for this nebula. A stellar wind is a constant stream of particles flowing from a star.
The star's light produces a complex spectrum. A spectrum is a pattern of light that reveals what a star is made of. The spectrum shows strong emission in the Paschen and Brackett series of hydrogen. It also shows emission lines for helium, iron (FeII), magnesium (MgII), and sodium (NaI). Some of these helium lines appear doubled in high-resolution views. These doubled lines are a key reason scientists suspect the system is a binary. If there are two stars, the mass and luminosity estimates might make more sense.
This star belongs to a very interesting neighborhood. It is a member of the 1806−20 open cluster. This cluster is part of W31, which is one of the largest H II regions in the Milky Way. 
History shows how our understanding of LBV 1806−20 has changed. When it was first discovered, it seemed like the most massive star known. This discovery challenged what scientists understood about how massive stars form. However, recent estimates have changed our view. We now believe the star is somewhat nearer to Earth than previously thought. This new distance means its mass and brightness fit within expected ranges for very luminous stars. It is no longer seen as a total mystery, but as a rare example of an extreme star.
While it is a candidate for being a luminous blue variable, we are still waiting for proof. An LBV should show specific changes in its light over time. So far, these photometric and spectroscopic variations have not been observed. We also see that the emission lines are single. This suggests only one star in the system has a very dense stellar wind. Scientists continue to study its spectral type, which is likely between O9 and B2. This ongoing research helps us map the life cycles of the most powerful stars in our galaxy.
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