Three energy-loss routes may explain Tarantula Nebula's X-ray shortfall
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Like a collage made of layered sheets of colored cellophane, a vibrant new image layers observations of a famous star-forming nebula from NASA's space telescopes. The resulting cosmic "craft" reveals new details about the star-forming region known as 30 Doradus, or the Tarantula Nebula.
Located in the Large Magellanic Cloud, a small neighboring galaxy to the Milky Way about 160,000 light-years (about 940 quadrillion miles) from Earth, the Tarantula has thousands of young stars embedded in a vibrant honeycomb-like structure of gas and dust.
The new composite image contains X-rays from NASA's Chandra X-ray Observatory, which has repeatedly observed the Tarantula Nebula over the course of its mission, in the blue layer. The X-ray data reveals gas blown away by winds from the surfaces of young, massive stars and heated to millions of degrees by shock waves, like sonic booms from supersonic jets.
The red represents infrared data from NASA's James Webb Space Telescope showing thousands of young stars, plus swaths of cool dust that will provide the ingredients to form new stars and planets. Optical data in the green layer from NASA's Hubble Space Telescope uncovers hydrogen gas that is warmer than that seen with Webb, as well as some individual stars through the nebula.
A puzzle in the missing X-rays
The composite image shows the full Hubble and Webb images of this region, as well as a large section of the Chandra image, all recently published in a research paper in The Astrophysical Journal. In some regions, the blue Chandra layer stands alone, and in others, it combines with either the red Webb data or the green Hubble data. In the middle region, all three images overlap to provide a holistic view in red, orange, yellow, green and blue.
Previously, astronomers had studied the amount and impact of energy produced by winds from young, massive stars in the Tarantula Nebula. Scientists expect that much of this energy should heat gas so that it produces X-rays. However, the research paper shows that there is much less X-ray-emitting gas in the nebula than expected. This led researchers to ask: Where has this energy gone, and what tamed the Tarantula Nebula?
Three ways the nebula cools
By studying data from Chandra, Hubble and Webb, combined with data from NASA's retired Spitzer Space Telescope, the team concluded that the Tarantula may be losing energy from several sources.
First, up to half of the hot gas is leaking through the shell walls of the gas and dust structures and escaping the nebula. Next, there is stirring and mixing between the cold gas near the shell walls and some of the hot gas, lowering the overall temperature of the gas.
Finally, comparisons with computer simulations suggest the Tarantula may be losing energy through conduction. This involves direct physical contact between hot and cooler material, as with a frying pan on a burner, causing the materials to equalize in temperature.
In the case of the Tarantula Nebula, the hot gas would be conducting heat by being in direct contact with the cooler gas in the shells, especially in the densest regions. This scenario does not necessarily involve mixing the hot and cooler gas.
The combination of these three channels for losing large amounts of energy leads to this colorful and complex display revealed by NASA's telescopes working together.
Publication details
Jennifer A. Rodriguez et al, Taming the Tarantula: How Stellar Wind Feedback Shapes Gas and Dust in 30 Doradus, The Astrophysical Journal (2026). DOI: 10.3847/1538-4357/ae3c7a
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Citation: Three energy-loss routes may explain Tarantula Nebula's X-ray shortfall (2026, August 11) retrieved 12 August 2026 from https://phys.org/news/2026-08-energy-loss-routes-tarantula-nebula.html
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