Showing posts with label Lunar. Show all posts
Showing posts with label Lunar. Show all posts

Monday, August 9, 2010

Lunar Reconnaissance Orbiter LROC images - August 3-5, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:
  • Remnants of the Imbrium impact (Released 3 August 2010)
    Mare basalts embayed ejecta structures formed by the massive Imbrium impact.
  • Concentric crater (Released 4 August 2010)
    The inner rim of Gruithuisen K.
  • A path not taken (Released 5 August 2010)
    Mare surface in Sinus Aestuum near a lunar exploration site proposed in the late 1950s.

Tuesday, May 4, 2010

Lunar Reconnaissance Orbiter LROC and LOLA images - April 20-30, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available: Lunar Orbiter Laser Altimeter (LOLA) Image of the Week:
  • Copernicus (Released 30 April 2010)
    800 million years ago an impactor struck the eastern extent of Oceanus Procellarum, the "Ocean of Storms."

Tuesday, April 20, 2010

Lunar Reconnaissance Orbiter LROC images - April 13-16, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:

Monday, April 19, 2010

Craters Around Lunar Poles Could Be Electrified


Illustration on LADEE probe in orbit around the Moon. More about Lunar Electric Craters

As the solar wind flows over natural obstructions on the moon, it may charge polar lunar craters to hundreds of volts, according to new calculations by NASA's Lunar Science Institute team.

Polar lunar craters are of interest because of resources, including water ice, which exist there. The moon's orientation to the sun keeps the bottoms of polar craters in permanent shadow, allowing temperatures there to plunge below minus 400 degrees Fahrenheit, cold enough to store volatile material like water for billions of years.

"However, our research suggests that, in addition to the wicked cold, explorers and robots at the bottoms of polar lunar craters may have to contend with a complex electrical environment as well, which can affect surface chemistry, static discharge, and dust cling," said William Farrell of NASA's Goddard Space Flight Center, Greenbelt, Md.

"This important work by Dr. Farrell and his team is further evidence that our view on the moon has changed dramatically in recent years," said Gregory Schmidt, deputy director of the NASA Lunar Science Institute at NASA's Ames Research Center, Moffett Field, Calif. "It has a dynamic and fascinating environment that we are only beginning to understand."

Solar wind inflow into craters can erode the surface, which affects recently discovered water molecules. Static discharge could short out sensitive equipment, while the sticky and extremely abrasive lunar dust could wear out spacesuits and may be hazardous if tracked inside spacecraft and inhaled over long periods.

The solar wind is a thin gas of electrically charged components of atoms - negatively charged electrons and positively charged ions - that is constantly blowing from the surface of the sun into space. Since the moon is only slightly tilted compared to the sun, the solar wind flows almost horizontally over the lunar surface at the poles and along the region where day transitions to night, called the terminator.

The researchers created computer simulations to discover what happens when the solar wind flows over the rims of polar craters. They discovered that in some ways, the solar wind behaves like wind on Earth - flowing into deep polar valleys and crater floors. Unlike wind on Earth, the dual electron-ion composition of the solar wind may create an unusual electric charge on the side of the mountain or crater wall; that is, on the inside of the rim directly below the solar wind flow.

Since electrons are over 1,000 times lighter than ions, the lighter electrons in the solar wind rush into a lunar crater or valley ahead of the heavy ions, creating a negatively charged region inside the crater. The ions eventually catch up, but rain into the crater at consistently lower concentrations than that of the electrons. This imbalance in the crater makes the inside walls and floor acquire a negative electric charge.

The calculations reveal that the electron/ion separation effect is most extreme on a crater's leeward edge - along the inside crater wall and at the crater floor nearest the solar wind flow. Along this inner edge, the heavy ions have the greatest difficulty getting to the surface. Compared to the electrons, they act like a tractor-trailer struggling to follow a motorcycle; they just can't make as sharp a turn over the mountain top as the electrons.

"The electrons build up an electron cloud on this leeward edge of the crater wall and floor, which can create an unusually large negative charge of a few hundred Volts relative to the dense solar wind flowing over the top," says Farrell.

The negative charge along this leeward edge won't build up indefinitely. Eventually, the attraction between the negatively charged region and positive ions in the solar wind will cause some other unusual electric current to flow.

The team believes one possible source for this current could be negatively charged dust that is repelled by the negatively charged surface, gets levitated and flows away from this highly charged region. "The Apollo astronauts in the orbiting Command Module saw faint rays on the lunar horizon during sunrise that might have been scattered light from electrically lofted dust," said Farrell.

"Additionally, the Apollo 17 mission landed at a site similar to a crater environment - the Taurus-Littrow valley. The Lunar Ejecta and Meteorite Experiment left by the Apollo 17 astronauts detected impacts from dust at terminator crossings where the solar wind is nearly-horizontal flowing, similar to the situation over polar craters."

Next steps for the team include more complex computer models. "We want to develop a fully three-dimensional model to examine the effects of solar wind expansion around the edges of a mountain. We now examine the vertical expansion, but we want to also know what happens horizontally," said Farrell. As early as 2012, NASA will launch the Lunar Atmosphere and Dust Environment Explorer (LADEE) mission that will orbit the moon and could look for the dust flows predicted by the team's research.

Farrell is lead author of a paper on this research published March 24 in the Journal of Geophysical Research. The research is part of the Lunar Science Institute's Dynamic Response of the Environment at the moon (DREAM) project. The team includes researchers from NASA Goddard, the University of California, Berkeley, and the University of Maryland, Baltimore County.



Saturday, April 10, 2010

Sandcastles On The Moon


Robots are coming to a Moon near you very soon. Aside from a new fleet of orbiters, some will be landing within three years. There will be rovers deployed on the Moon, and sample return missions. This new wave of missions is brought to you by the governments of the USA, China, India and a collection of private ventures.

With so much attention focused on revisiting the Moon, it's time to re-explore a basic task that's never really been practiced before. Can we work effectively with the lunar regolith?

Any serious talk of working or staying on the Moon includes ways of using lunar materials to our advantage. In its most crude form, this means shoveling lunar soil on top of a lunar base, to protect it from radiation and meteorite impacts. Other uses would be more sophisticated, such as making concrete from the soil, or refining the soil to extract metals, oxygen and other useful things.

Landing areas for spacecraft would need to be built, free from the debris that's normally kicked up by rocket exhaust. Berms of lunar soil would protect fragile structures from nearby launches and landings. We may even want to dig deep underground, to bury certain items.

All of this sounds simple in theory. Just take a big shovel or some type of construction gear, and dig. But is it really this straightforward? We don't properly understand the mechanical properties of the regolith, dust and rocks. We don't know how well equipment and techniques that work well on Earth will perform on the Moon.

During the Apollo missions, astronauts were surprised by the behavior of the lunar soil. It adhered quickly to their spacesuits and equipment. The regolith was also more difficult to penetrate than mission planners had suspected. Planting a rod for a flag was tricky.

During an attempt to drill a core sample, Apollo 15 astronaut James Irwin apparently suffered a minor cardiac problem, according to biometric telemetry.

We will need to gather more data on the handling of lunar soil if we want to do anything ambitious on the Moon, and the best way to do it is with machines, long before astronauts return.

Some private companies are already proposing small robotic lunar dump trucks, which could excavate and move the soil. Over a long period of time, these could steadily build up large structures. But how long would it take, and how effective would it be? That's not known right now.

Doing something as simple as getting a robot to build sandcastles on the Moon would be a step forward. It would be an exercise in mechanical engineering, and a test of how disturbed regolith behaves.

Can we make lunar bricks by fusing the soil with heat? Is it better to build up a berm of raw soil, then "cook" the exterior for strength? These are also unresolved issues.

Other tests we need to perform include placing radiation dosimeters under artificial lunar mounds, to test their shielding properties. Firing mortar shells or pellets at structures would also simulate meteorite strikes.

These questions can only be answered with a lot of missions, and a lot of testing. It will take time, but it needs to be done. Without this knowledge, we will never be able to use the Moon to its full advantage.

Dr Morris Jones is the author of The New Moon Race, available from Rosenberg Publishing.



Lunar Reconnaissance Orbiter LROC images - April 2-8, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:

Friday, April 2, 2010

Lunar Reconnaissance Orbiter LROC images - March 26-April 1, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:

Wednesday, March 31, 2010

ESA Looking at Lunar Lander Mission


Recent investigations by NASA's Lunar Crater Observation and Sensing Satellite (LCROSS) satellite have revealed in late 2009 that massive amounts of water-ice can be found at the lunar south pole. Though the area experiences extremely cold temperatures, and the craters there are among the coolest places in the solar system, researchers and astronomers at the European Space Agency (ESA) are already planning a mission to the location. The flight is scheduled to be unmanned, and the agency plans to put a lander on the surface of the planet's natural satellite in the not-too-distant future, Space Fellowship reports.

More than 40 years ago, Apollo astronauts set foot on the Moon, but at the time they landed in relatively smooth terrain, where there was a lot of room to maneuver. But the future ESA mission will not be so easy to plan and execute. The lunar south pole is an extremely rugged place, with high ridges marking the boundaries of very deep craters, where sunlight hasn't reached the bottom for millions of years. It is in this desolate landscape that ESA officials want to set down a lander, so that it could benefit from the advantages that the presence of ice brings.

At this point, ESA is launching a submissions campaign for proposals on how the Lunar Lander mission should take place. Representatives of the industry are expected to submit their proposals for the vehicles that would take scientific equipment there, as well as for how the entire flight would be set up and organized. There is a vast array of technical problems to consider as well, and the trip is no less dangerous now than it was when the United States sent its manned missions to the Moon. The case of the Apollo 13 mission is still vivid in the mind of many, and experts know that it was only luck, dedication and hard work under extreme stress conditions that saw the three astronauts returning home alive.

According to officials at the agency, there are two goals that proposal submitters need to keep in mind. The first is that the delivery vehicle and the spacecraft itself need to be extremely precise in their navigation instruments, so that they can be landed with extreme accuracy in this difficult terrain. The heavily-cratered terrain is the direct target of the mission. The second objective is for the lander to image the land below as it descends and recognize hazardous terrain using onboard artificial intelligence. Additionally, the spacecraft will need to be able to analyze its location with a large array of scientific instruments.

Monday, March 22, 2010

Lunar Reconnaissance Orbiter LROC images - March 15-19, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:
  • Soviet Union Lunar Sample Return Missions (Released 15 March 2010)
    On February 21, 1972, Luna 20 soft landed in the rugged highlands between Mare Fecunditatis and Mare Crisium.
  • Soviet Union Lunar Rovers (Released 17 March 2010)
    Soviet robotic lander Luna 17 still sitting on Mare Imbrium where it delivered the Lunokhod 1 Rover in November 1970.
  • Luna 21 Lander (Released 19 March 2010)
    Luna 21 lander delivered the Lunokhod 2 rover to the floor of Le Monnier crater in January 1973.

Saturday, March 20, 2010

Lunar Reconnaissance Orbiter LROC images - March 15-19, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:
  • Soviet Union Lunar Sample Return Missions (Released 15 March 2010)
    On February 21, 1972, Luna 20 soft landed in the rugged highlands between Mare Fecunditatis and Mare Crisium.
  • Soviet Union Lunar Rovers (Released 17 March 2010)
    Soviet robotic lander Luna 17 still sitting on Mare Imbrium where it delivered the Lunokhod 1 Rover in November 1970.
  • Luna 21 Lander (Released 19 March 2010)
    Luna 21 lander delivered the Lunokhod 2 rover to the floor of Le Monnier crater in January 1973.

Friday, March 19, 2010

The Mystery Of Moonwater



Mini-SAR map of the Circular Polarization Ratio (CPR) of the north pole of the Moon. Fresh, “normal” craters (red circles) show high values of CPR inside and outside their rims. This is consistent with the distribution of rocks and ejected blocks around fresh impact features, indicating that the high CPR here is surface scattering. The “anomalous” craters (green circles) have high CPR within, but not outside their rims. Their interiors are also in permanent sun shadow. These relations are consistent with the high CPR in this case being caused by water ice, which is only stable in the polar dark cold traps. We estimate over 600 million cubic meters (1 cubic meter = 1 metric ton) of water in these features.


Main L, 14 km diameter, 81.4° N, 22° E

Fresh Crater CPR
View a Larger version of the fresh crater CPR (537KB).
The fresh impact crater Main L (14 km diameter), which shows high CPR inside and outside its rim. SC is the “same sense, circular” polarization; CPR is “circular polarization ratio.” The histograms at right show that the high CPR values within (red line) and outside the crater rim (green line) are nearly identical.
Anomalous Polar Crater

On Floor of Rozhdestvensky, 9 km Diameter, 84.3° N, 157° W

An “anomalous” crater on the floor of Rozhdestvensky
View a Larger version of the Anomalous Polar Crater (627KB).
An “anomalous” crater on the floor of Rozhdestvensky, near the north pole of the Moon. This feature shows high CPR within the crater rim, but low CPR outside, suggesting that roughness (which occurs throughout a fresh crater) is not the cause of the elevated CPR. This feature’s interior is in permanent sun shadow. SC stands for “same sense, circular”, OC stands for “opposite sense, circular” and CPR is the “circular polarization ratio.” The histogram of CPR values clearly shows that interior points (red line) have higher CPR values than those outside the crater rim (green line).
Moonwater. Look it up. You won't find it. It's not in the dictionary. That's because we thought, until recently, that the Moon was just about the driest place in the solar system. Then reports of moonwater started "pouring" in - starting with estimates of scant amounts on the lunar surface, then gallons in a single crater, and now 600 million metric tons distributed among 40 craters near the lunar north pole."We thought we understood the Moon, but we don't," says Paul Spudis of the Lunar and Planetary Institute. "It's clear now that water exists up there in a variety of concentrations and geologic settings. And who'd have thought that today we'd be pondering the Moon's hydrosphere?"
Spudis is principal investigator of NASA's Mini-SAR team - the group with the latest and greatest moonwater "strike." Their instrument, a radar probe on India's Chandrayaan-1, found 40 craters each containing water ice at least 2 meters deep.
"If you converted those craters' water into rocket fuel, you'd have enough fuel to launch the equivalent of one space shuttle per day for more than 2000 years. But our observations are just a part of an even more tantalizing story about what's going on up on the Moon."
It's the story of a lunar water cycle, and it's based on the seemingly disparate - but perhaps connectable - results from Mini-SAR and NASA's recent LCROSS mission and Moon Mineralogy Mapper (M3 or "M-cubed") instrument also on Chandrayaan-1.
"So far we've found three types of moonwater," says Spudis. "We have Mini-SAR's thick lenses of nearly pure crater ice, LCROSS's fluffy mix of ice crystals and dirt, and M-cube's thin layer that comes and goes all across the surface of the Moon."
On October 9, 2009, LCROSS, short for Lunar Crater Observation and Sensing Satellite, struck water in a cold, permanently dark crater at the lunar south pole. Since then, the science team has been thoroughly mining their data.
"It looks as though at least two different layers of our crater soil contain water, and they represent two different time epochs," explains Anthony Colaprete, LCROSS principal investigator. "The first layer, ejected in the first 2 seconds from the crater after impact, contains water and hydroxyl bound up in the minerals, and even tiny pieces of pure ice mixed in. This layer is a thin film and may be relatively 'fresh,' perhaps recently replenished."
According to Colaprete, this brand of moonwater resembles the moonwater M3 discovered last year in scant but widespread amounts, bound to the rocks and dust in the very top millimeters of lunar soil.
The second layer is different. "It contains even more water ice plus a treasure chest of other compounds we weren't even looking for," he says. "So far the tally includes sulfur dioxide (SO2), methanol (CH3OH), and the curious organic molecule diacetylene (H2C4). This layer seems to extend below at least 0.5 meters and is probably older than the ice we're finding on the surface."
They don't know why some craters contain loads of pure ice while others are dominated by an ice-soil mixture. It's probably a sign that the moonwater comes from more than one source.
"Some of the water may be made right there on the Moon," says Spudis. "Protons in the solar wind can make small amounts of water continuously on the lunar surface by interacting with metal oxides in the rocks. But some of the water is probably deposited on the Moon from other places in the solar system."
The Moon is constantly bombarded by impactors that add to the lunar water budget. Asteroids contain hydrated minerals, and comet cores are nearly pure ice.
The researchers also think that much of the crater water migrates to the poles from the Moon's warmer, lower latitudes. "All our findings are telling us there's an active water cycle on the Moon," marvels Colaprete.
Think about it. The "driest place in the solar system" has a water cycle.
"It's a different world up there," says Spudis, "and we've barely scratched the surface. Who knows what discoveries lie ahead?"
Source:- NASA Science News

Tuesday, March 16, 2010

Researcher solves 37-year old space mystery



A researcher from The University of Western Ontario has helped solve a 37-year old space mystery using lunar images released yesterday by NASA and maps from his own atlas of the moon.

Phil Stooke, a professor cross appointed to Western's Departments of Physics & Astronomy and Geography, published a major reference book on lunar exploration in 2007 entitled, "The International Atlas of Lunar Exploration."

Yesterday, images and data from Nasa's Lunar Reconnaissance Orbiter (LRO) were posted. The LRO, scheduled for a one year exploration mission about 31 miles above the lunar surface, will produce a comprehensive map, search for resources and potential safe landing sites and measure lunar temperatures and radiation levels.

Using his atlas and the images, Stooke pinpointed the exact location of the Russian rover Lunokhod 2, discovering tracks left by the lunar sampler 37 years ago after it made a 35-kilometre trek. The journey was the longest any robotic rover has ever been driven on another celestial body.

As soon as the NASA photos were released, scientists around the world, including Stooke, began work to locate the rover. Stooke set up a searchable image database and located the photograph he needed, among thousands of others.

"The tracks were visible at once," says Stooke. "Knowing the history of the mission, it's possible to trace the rover's activities in fine detail. We can see where it measured the magnetic field, driving back and forth over the same route to improve the data. And we can also see where it drove into a small crater, and accidentally covered its heat radiator with soil as it struggled to get out again. That ultimately caused it to overheat and stop working. And the rover itself shows up as a dark spot right where it stopped."

The find, he adds will mean that older maps published by Russia will now need to be revised.

Stooke says that NASA scientists have used his atlas in both preparation and data recovery.

His next project is a similar volume on Mars exploration which will include the best maps of the moons of Mars.

Provided by University of Western Ontario

Planetary Data System Releases New Lunar Datasets


Officials at the American space agency announce that the archiving program Planetary Data System (PDS) released yesterday a new series of datasets on the our Moon. The information that were included in the releases were all collected by the seven advanced scientific instruments aboard the NASA Lunar Reconnaissance Orbiter (LRO), currently in orbit around Earth's natural satellite. Being a public-funded project, the PDS is available to everyone and can be viewed here.

“The Planetary Data System is a NASA-funded program to archive data from past and present planetary missions as well as astronomical observations and laboratory data. The purpose of the Planetary Data System is to make available to the public the fruits of NASA funded research and to allow advanced research on solar system science,” says the deputy project scientist for the LRO mission, Dr John Keller. The expert holds an appointment at the Greenbelt, Maryland-based NASA Goddard Space Flight Center. He adds that the new online resource will provide interested members of the general public with new maps and calibrated images of the Moon, all collected by the LRO.

Adds Keller of the spacecraft: “We're able to take advantage of the close proximity of the Moon, compared to other objects in the solar system, to transmit data from LRO back to Earth at a very high rate. The first data release is 55 terabytes. The one year exploration mission will deliver 130 terabytes of data, enabling a more detailed study our nearest celestial neighbor. We expect LRO to provide more data than all of the previous planetary missions combined.” The probe was launched last year alongside the Lunar Crater Observation and Sensing Satellite (LCROSS), which managed to demonstrate once and for all that water-ice exists in ever-shadowed craters at the lunar south pole.

The PDS will mostly include low-level form images that will not be highly processed. One reason for why NASA decided to take this approach is the fact that this provides researchers with more flexibility in dealing with the datasets. Some highly-processed and calibrated images will also be made available to both scientists and the general public. This is not the first information that the LRO collected to be published. Earlier this year, the LROC team published hundreds of Narrow Angle Cameras images, so as to give scientists a head-start before the massive volume of lunar-related information was brought online.

New Lunar Images and Data Available to the Public


The public can follow along with NASA on its journey of lunar discovery. On March 15, the publicly accessible Planetary Data System will release data sets from the seven instruments on board NASA's Lunar Reconnaissance Orbiter.

"The Planetary Data System is a NASA funded program to archive data from past and present planetary missions as well as astronomical observations and laboratory data," said Dr. John Keller, LRO Deputy Project Scientist from NASA Goddard Space Flight Center in Greenbelt, Md. "The purpose of the Planetary Data System is to make available to the public the fruits of NASA funded research and to allow advanced research on solar system science."

Each of the seven instruments is unique and will provide data in different formats to the Planetary Data System. Much of the data will be in a relatively low level form, not highly processed, which allows researchers to maximize flexibility in working with the data. The instrument teams will also provide higher level data products in the form of maps and calibrated images for the general public. Many of the images can be accessed using a computer with an internet browser.

Prior to the formal release of LRO data, the Lunar Reconnaissance Orbiter Camera team released several hundred images from the pair of Narrow Angle Cameras on-board the spacecraft. These images were released to give researchers a head start on using the data before the tidal wave of data was unleashed.

"We're able to take advantage of the close proximity of the Moon, compared to other objects in the solar system, to transmit data from LRO back to Earth at a very high rate," said Keller. "The first data release is 55 terabytes. The one year exploration mission will deliver 130 terabytes of data, enabling a more detailed study our nearest celestial neighbor. We expect LRO to provide more data than all of the previous planetary missions combined."

LRO was mandated to release data to the Planetary Data System beginning six months after initial operation. Some of the higher level data products require the full year of measurements and won't be released until after the end of the exploration mission. LRO will move into its science phase in September, when the program management responsibility moves from the Exploration Systems Mission Directorate to the Science Mission Directorate at NASA Headquarters.

LRO is scheduled for a one year exploration mission in a polar orbit about 31 miles above the lunar surface. During this time, LRO will produce a comprehensive map of the lunar surface in unprecedented detail, search for resources and potential safe landing sites for a potential future return to the moon and measure lunar temperatures and radiation levels.

The lunar bound spacecraft launched from Kennedy Space Center, Fla. on June 18, 2009. Since that time the spacecraft has completed calibration and commissioning. LRO formally began its detailed survey of the moon in September 2009. First results from the mission included - new looks at the Apollo landing sites; indications that permanently shadowed and nearby regions may harbor water and hydrogen; observations that large areas in the permanently shadowed regions are colder than Pluto; and detailed information on lunar terrain. LRO also supported the Lunar Crater Observation and Sensing Satellite impact, first by helping to select a promising site and second by observing both the expanding plume that arose after the impact and the evolving temperature at the impact site.

NASA's Goddard Space Flight Center built and manages the mission for the Exploration Systems Mission Directorate at NASA Headquarters in Washington. The Institute for Space Research, Moscow, provides the neutron detector aboard the spacecraft.

To access the Planetary Data System, go to: http://pds.jpl.nasa.gov/

More information can be found about LRO at: http://www.nasa.gov/lro

Monday, March 15, 2010

Lunar Reconnaissance Orbiter LROC images - February 22-March 11, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:

Tuesday, March 2, 2010

Large Amount of Water Found at Lunar North Pole


A recent investigation into datasets collected by a small NASA radar instrument revealed that existence of more than 40 craters at the north pole of the Moon that could be holding water-ice. The finding is of epic proportions, especially when considering that the LCROSS impactor made similar discoveries for water-ice at the south pole region. Additionally, other data collected from various spacecrafts proved the existence of significant amounts of water particles in other areas of the lunar surface as well. According to early results, it could be that more than 600 million metric tons of water ice exist at the lunar north pole, Space Fellowship reports.

The new data was collected by the NASA Mini-SAR instrument, which was mounted aboard the Indian space agency's (ISRO) Chandrayaan-1 spacecraft. The lightweight, synthetic aperture apparatus found roughly 40 small craters containing the stuff. The discovery is of significant importance, given the fact that future missions to the Moon would undoubtedly need to be able to procure their drinking water on-site. Carrying tons of water from Earth would be too expensive, and completely unpractical. The ice could also be used to produce oxygen for life support systems, as well as hydrogen for rocket fuel, that astronauts would use to return home.

“The emerging picture from the multiple measurements and resulting data of the instruments on lunar missions indicates that water creation, migration, deposition and retention are occurring on the Moon. The new discoveries show the moon is an even more interesting and attractive scientific, exploration and operational destination than people had previously thought,” says the Mini-SAR experiment principal investigator, Paul Spudis. He is an expert at the Houston, Texas-based Lunar and Planetary Institute. He adds that the craters found by the Mini-SAR instrument are between 2 and 15 kilometers (1 to 9 miles) in diameter.

“After analyzing the data, our science team determined a strong indication of water ice, a finding which will give future missions a new target to further explore and exploit,” adds Mini-RF Program program executive Jason Crusan, from the NASA Space Operations Mission Directoratem in Washington, DC. Full details of the discoveries made using the small synthetic-aperture radar are published in the latest issue of the respected scientific journal Geophysical Research Letters.

Wednesday, February 24, 2010

Lunar Reconnaissance Orbiter LROC images - February 10-15, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:

Friday, February 12, 2010

Lunar Reconnaissance Orbiter LROC images - February 1-5, 2010


The following featured images taken by the Lunar Reconnaissance Orbiter Camera (LROC) are now available:

Tuesday, June 23, 2009

First Moon Photo from Just-Arrived NASA Probe



NASA's LCROSS probe beamed this view of the moon's Mendeleev region, an ancient impact basin with relatively uniform floor deposits on the far side, during afirst flyby on June, 23, 2009. The probe's position at the time of the image is also shown. The probe will ultimately crash into the lunar surface to hunt for water ice on Oct. 9, 2009. Credit: NASA


A new NASA probe beamed down live images of the moon early Tuesday to reveal a stark surface littered with craters, as it flew toward a planned crash at the lunar south pole later this year.

The $79 million Lunar Crater Observation and Sensing Satellite, or LCROSS, launched toward the moon on June 18 and began sending images today at 8:20 a.m. EDT (1220 GMT).

LCROSS and an attached empty Centaur rocket stage swooped down near the lunar south pole and continued north along the far side of the moon. The spacecraft is getting into position to crash down on the surface on Oct. 9.

Read full story at SPACE.com

NASA Lunar Reconnaissance Orbiter Successfully Enters Moon Orbit



After a four and a half day journey from the Earth, the Lunar Reconnaissance Orbiter, or LRO, has successfully entered orbit around the moon. Engineers at NASA's Goddard Space Flight Center in Greenbelt, Md., confirmed the spacecraft's lunar orbit insertion at 6:27 a.m. EDT Tuesday.

During transit to the moon, engineers performed a mid-course correction to get the spacecraft in the proper position to reach its lunar destination. Since the moon is always moving, the spacecraft shot for a target point ahead of the moon. When close to the moon, LRO used its rocket motor to slow down until the gravity of the moon caught the spacecraft in lunar orbit.

"Lunar orbit insertion is a crucial milestone for the mission," said Cathy Peddie, LRO deputy project manager at Goddard. "The LRO mission cannot begin until the moon captures us. Once we enter the moon's orbit, we can begin to buildup the dataset needed to understand in greater detail the lunar topography, features and resources. We are so proud to be a part of this exciting mission and NASA's planned return to the moon."

A series of four engine burns over the next four days will put the satellite into its commissioning phase orbit. During the commissioning phase each of its seven instruments is checked out and brought online. The commissioning phase will end approximately 60 days after launch, when LRO will use its engines to transition to its primary mission orbit.

For its primary mission, LRO will orbit above the moon at about 31 miles, or 50 kilometers, for one year. The spacecraft's instruments will help scientists compile high resolution, three-dimensional maps of the lunar surface and also survey it at many spectral wavelengths.

The satellite will explore the moon's deepest craters, examining permanently sunlit and shadowed regions, and provide understanding of the effects of lunar radiation on humans. LRO will return more data about the moon than any previous mission.

For more information about the LRO mission, visit: http://www.nasa.gov/lro