News on asteroids
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- Dawn uncovers mineraology of the asteroid Vesta
- Dawn sees new surface features on giant asteroid
- Near-miss asteroid will pass earth again in 2013
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- Space-environment of an asteroid
- Bus-sized asteroid passes Earth
- Vesta is most likely cold enough to contain water-ice
- First images of Vesta from low-orbit
- Fresh impact craters on asteroid Vesta
- Take a virtual 3D tour over asteroid Vesta
- High-school student doubles NEO-tracking accuracy
- Asteroid YU55 is just a pile of rocks
- More images of asteroid 2005 YU55
- New video of asteroid 2005 YU55
- Asteroid Lutetia: A rare surviver from the birth of the Earth
- First video of asteroid 2005YU55
- New images of asteroid passing Earth
- 400m asteroid passes Earth tuesday
- Asteroid Lutetia is a "failed planet"
- Large asteroid passing Earth nov. 4
- Researchers reconstruct asteroid impact
- Asteroid displays comet-like tail
- The mysteries of asteroid Minerva and its moons
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Asteroid Lutetia: A rare surviver from the birth of the Earth
Friday, 11 November 2011 11:58
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| Solar system - Asteroids |
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New observations indicate that the asteroid Lutetia is a leftover fragment of the same original material that formed the Earth, Venus and Mercury. Astronomers have combined data from ESA’s Rosetta spacecraft, ESO’s New Technology Telescope, and NASA telescopes. They found that the properties of the asteroid closely match those of a rare kind of meteorites found on Earth and thought to have formed in the inner parts of the Solar System. Lutetia must, at some point, have moved out to its current location in the main asteroid belt between Mars and Jupiter. A team of astronomers from French and North American universities have studied the unusual asteroid Lutetia in detail at a very wide range of wavelengths to deduce its composition. Data from the OSIRIS camera on ESA’s Rosetta spacecraft, ESO’s New Technology Telescope (NTT) at the La Silla Observatory in Chile, and NASA’s Infrared Telescope Facility in Hawaii and Spitzer Space Telescope were combined to create the most complete spectrum of an asteroid ever assembled. This spectrum of Lutetia was then compared with that of meteorites found on Earth that have been extensively studied in the laboratory. Only one type of meteorite — enstatite chondrites— was found to have properties that matched Lutetia over the full range of colours. Enstatite chondrites are known to be material that dates from the early Solar System. They are thought to have formed close to the young Sun and to have been a major building block in the formation of the rocky planets, in particular the Earth, Venus and Mercury. Lutetia seems to have originated not in the main belt of asteroids, where it is now, but much closer to the Sun. Astronomers have estimated that less than 2% of the bodies located in the region where Earth formed, ended up in the main asteroid belt. Most of the bodies of the inner Solar System disappeared after a few million years as they were incorporated into the young planets that were forming. However, some of the largest, with diameters of about 100 kilometres or more, were ejected to safer orbits further from the Sun.
Landslide on Lutetia, imaged by ESA's Rosetta probe Lutetia, which is about 100 kilometres across, may have been tossed out from the inner parts of the young Solar System if it passed close to one of the rocky planets and thus had its orbit dramatically altered. An encounter with the young Jupiter during its migration to its current orbit could also account for the huge change in Lutetia’s orbit. “We think that such an ejection must have happened to Lutetia. It ended up as an interloper in the main asteroid belt and it has been preserved there for four billion years,” continues Pierre Vernazza. Earlier studies of its colour and surface properties showed that Lutetia is a very unusual and rather mysterious member of the asteroid main belt. Previous surveys have shown that similar asteroids are very rare and represent less than 1% of the asteroid population of the main belt. The new findings explain why Lutetia is different — it is a very rare survivor of the original material that formed the rocky planets. “Lutetia seems to be the largest, and one of the very few, remnants of such material in the main asteroid belt. For this reason, asteroids like Lutetia represent ideal targets for future sample return missions. We could then study in detail the origin of the rocky planets, including our Earth,” concludes Pierre Vernazza. Source: ESO |





