NASA probe finds water on asteroid Bennu


Washington, Dec 11 (IANS): NASA's first spacecraft sent to collect sample from an asteroid has found water locked inside asteroid Bennu -- a remnant from early in the formation of the solar system.

Launched in September 2016, the Origins, Spectral Interpretation, Resource Identification, Security-Regolith Explorer (OSIRIS-REx) mission will help scientists investigate how planets formed and how life began, as well as improve our understanding of asteroids that could impact Earth.

Spectral observations made by the spacecraft's two spectrometers, the OSIRIS-REx Visible and Infrared Spectrometer (OVIRS) and the OSIRIS-REx Thermal Emission Spectrometer (OTES) revealed the presence of molecules that contain oxygen and hydrogen atoms bonded together, known as "hydroxyls".

These hydroxyl groups exist globally across the asteroid in water-bearing clay minerals, meaning that at some point Bennu's rocky material interacted with water.

While Bennu itself is too small to have ever hosted liquid water, the finding does indicate that liquid water was present at some time on Bennu's parent body, a much larger asteroid, NASA said in a statement on Monday.

"The presence of hydrated minerals across the asteroid confirms that Bennu, a remnant from early in the formation of the solar system, is an excellent specimen for the OSIRIS-REx mission to study the composition of primitive volatiles and organics," said Amy Simon from NASA's Goddard Space Flight Center in Maryland.

"When samples of this material are returned by the mission to Earth in 2023, scientists will receive a treasure trove of new information about the history and evolution of our solar system," Simon added.

Initial assessment of Bennu's regolith indicates that the surface of Bennu is a mix of very rocky, boulder-filled regions and a few relatively smooth regions that lack boulders.

However, the quantity of boulders on the surface is higher than expected. The team will make further observations at closer ranges to more accurately assess where a sample can be taken on Bennu for later return to Earth.

The findings on Bennu brings scientists "a step closer to the possibility of asteroids providing astronauts on future missions into the solar system with resources like fuel and water", said researchers from the University of Arizona.

After travelling through space for more than two years and over two billion kilometres, OSIRIS-REx spacecraft reached Bennu on December 3.

The mission is currently performing a preliminary survey of the asteroid, flying the spacecraft in passes over Bennu's north pole, equator, and south pole at ranges as close as 4.4 miles (7 km) to better determine the asteroid's mass.

The spacecraft's first orbital insertion is scheduled for December 31, and OSIRIS-REx will remain in orbit until mid-February 2019, when it will exit to initiate another series of flybys for the next survey phase.

During the first orbital phase, the spacecraft will orbit the asteroid at a range of 0.9 miles (1.4 km) to 1.24 miles (2.0 km) from the centre of Bennu - setting new records for the smallest body ever orbited by a spacecraft and the closest orbit of a planetary body by any spacecraft.


  

Top Stories


Leave a Comment

Title: NASA probe finds water on asteroid Bennu



You have 2000 characters left.

Disclaimer:

Please write your correct name and email address. Kindly do not post any personal, abusive, defamatory, infringing, obscene, indecent, discriminatory or unlawful or similar comments. Daijiworld.com will not be responsible for any defamatory message posted under this article.

Please note that sending false messages to insult, defame, intimidate, mislead or deceive people or to intentionally cause public disorder is punishable under law. It is obligatory on Daijiworld to provide the IP address and other details of senders of such comments, to the authority concerned upon request.

Hence, sending offensive comments using daijiworld will be purely at your own risk, and in no way will Daijiworld.com be held responsible.