Showing posts with label Rocknest. Show all posts
Showing posts with label Rocknest. Show all posts

Thursday, June 20, 2013

NASA Mars Curiosity Rover: Billion-Pixel Image Shows Mars in Stunning Detail

This is a reduced version of a mosaic from NASA's Mars rover Curiosity containing 1.3 billion pixels in the full-resolution version. 

It shows Curiosity at the "Rocknest" site, where the rover scooped up samples of windblown dust and sand, and was released on June 19, 2013. 

Viewers can explore this image with pan and zoom controls at http://mars.nasa.gov/bp1/.

CREDIT: NASA/JPL-Caltech/MSSS

A new 1.3-billion-pixel image from NASA’s Mars rover Curiosity allows viewers to zoom in and investigate part of the Red Planet in incredible detail.

The huge mosaic stitches together nearly 900 photos that the Curiosity rover took with some of its 17 cameras during the robot's exploration of Gale Crater on Mars, NASA officials said.

"It gives a sense of place and really shows off the cameras' capabilities," Bob Deen, of the Multi-Mission Image Processing Laboratory at NASA's Jet Propulsion Laboratory in Pasadena, Calif., said in a statement. "You can see the context and also zoom in to see very fine details."



Deen constructed the mosaic using 871 pictures from Curiosity's Mast Camera instrument and 25 black-and-white frames from the rover's navigation cameras.

The photos were taken between Oct. 5 and Nov. 16, 2012, officials said.

Curiosity landed inside the 96-mile-wide (154 km) Gale Crater on Aug. 5, 2012, kicking off a planned two-year surface mission to assess Mars' past and present potential to host microbial life.

In addition to its 17 cameras, Curiosity also carries 10 different science instruments to aid its quest.

The six-wheeled robot has already checked off its primary goal. Mission scientists announced in March that a spot near Curiosity's landing site called Yellowknife Bay was indeed habitable long ago.

Sunday, April 28, 2013

NASA Mars Curiosity Rover: MRO HiRise Traverse Map, Sol 130

This map traces where NASA's Mars rover Curiosity drove between landing at a site subsequently named "Bradbury Landing," and the position reached during the mission's 130th Martian day, or sol, (Dec. 17, 2012). 

The inset shows the most recent legs of the traverse in greater detail.

Credit: NASA /JPL-Caltech /Univ. of Arizona

The rover entered a shallow depression called "Yellowknife Bay" with a drive of about 86 feet (26.1 meters) on Sol 125 (Dec. 12). 

It subsequently drove about 108 feet (32.8 meters) on Sol 127 (Dec. 14) and about 18 feet (5.6 meters) on Sol 130.


Yellowknife Bay 
Yellowknife Bay is a potential location for selection of the first target rock for Curiosity's hammering drill. 

The ground in this basin is a different type of terrain from the terrain Curiosity crossed getting there from Bradbury Landing. 

Nighttime observations from orbit indicate that the ground in the basin retains daytime heating better than the terrain around Bradbury Landing does, a property called high thermal inertia.


Bradbury Landing
The mapped area is within Gale Crater and north of the mountain called Mount Sharp in the middle of the crater. 

After the first use of the drill, the rover's main science destination will be on the lower reaches of Mount Sharp. 



The base image from the map is from the High Resolution Imaging Science Experiment Camera (HiRISE) in NASA's Mars Reconnaissance Orbiter.


Monday, April 1, 2013

Has NASA's Curiosity Rover Found Clues to Life's Building Blocks on Mars?

This patch of windblown sand and dust downhill from a cluster of dark rocks is the 'Rocknest' site studied by NASA’s Mars rover Curiosity. 

The Rocknest patch is about 8 feet by 16 feet (1.5 meters by 5 meters) and may contain perchlorate salts. Image added April 1, 2013.

CREDIT: NASA/JPL-Caltech/MSSS

NASA's Mars rover Curiosity just might be the latest in a long line of Mars-exploring robots to discover the building blocks for primitive life on the Red Planet.

The Curiosity rover may have gathered evidence for the presence of perchlorates in Rocknest — a sand patch inside the rover's Gale Crater landing site on the Red Planet, scientists say. If so, it shores up the case that the material may well be globally distributed on Mars.

Not only can perchlorates, which are a class of salts, serve as an energy source for potential Martian microorganisms, they are also a sensitive marker of past climate and can lead to the formation of liquid brines under current conditions on the planet.

The possibility that perchlorates are widespread on Mars was detailed in a March 18 presentation at the 44th annual Lunar and Planetary Science Conference in The Woodlands, Texas.


Curiosity's possible detection
The possible detection of perchlorates at Curiosity’s Gale crater site was spotlighted by Doug Archer, a scientist with the Astromaterials Research and Exploration Science Directorate of NASA's Johnson Space Center in Houston. He is focused on the habitability of various Martian environments over time. [The Search for Life on Mars

Archer pointed to the rover’s Sample Analysis at Mars (SAM) instrument suite that recently ran four samples from Rocknest. That area was selected as the source of the first samples analyzed because it is representative of both windblown material in the Gale Crater and the planet's globally distributed dust, he said.

"When we heated this up, we saw a large oxygen release at the same time we saw the release of these chlorinated hydrocarbons," Archer said, thus making a strong case for the presence of perchlorate salts in Rocknest's soil.

Thursday, December 27, 2012

NASA Mars Rover Curiosity: Self portrait at Rocknest

On the 84th and 85th Martian days of the NASA Mars rover Curiosity's mission on Mars (Oct. 31 and Nov. 1, 2012), NASA's Curiosity rover used the Mars Hand Lens Imager (MAHLI) to capture dozens of high-resolution images to be combined into self-portrait images of the rover.

The mosaic shows the rover at "Rocknest," the spot in Gale Crater where the mission's first scoop sampling took place. 

Four scoop scars can be seen in the regolith in front of the rover. A fifth scoop was collected later.

Self-portraits like this one document the state of the rover and allow mission engineers to track changes over time, such as dust accumulation and wheel wear. 

Due to its location on the end of the robotic arm, only MAHLI (among the rover's 17 cameras) is able to image some parts of the craft, including the port-side wheels.

Image Credit: NASA/JPL-Caltech/MSSS

Tuesday, December 4, 2012

NASA Mars Rover Curiosity: Complex Chemistry at Rocknest

This is a view of the third (left) and fourth (right) trenches made by the 1.6-inch-wide scoop on NASA's Mars rover Curiosity in October 2012. 

The image shows some of the properties of the "Rocknest" wind drift sand. The upper surface of the drift is covered by coarse sand grains approximately 0.02 to 0.06 inches in size. Beneath the crust surface is finer sand, which is darker brown.

NASA/JPL-Caltech

NASA’s Mars rover Curiosity can’t yet confirm any organic compounds on the Red Planet, NASA scientists said today--but the rover is seeing some intriguing chemicals, which will lead to further careful analysis about whether its home in Gale Crater could have played host to life.

“SAM has no definitive detection to report of organic compounds,” said Paul Mahaffy, the principal investigator for the SAM instrument, which stands for Sample Analysis at Mars.

The instrument did see some carbon-containing material--it’s just not clear whether the carbon in it comes from Mars, or whether Curiosity toted it from Earth.

What’s more, at least some of the detected material was most likely created in chemical reactions inside Curiosity’s belly, as the SAM instrument’s oven baked sand samples.

The results mark the first soil sample analysis from the SAM lab suite, the most complex chemistry lab ever sent to another world. “We really consider this a terrific milestone,” Mahaffy said at a news conference Monday.

The presence of perchlorate may be the biggest news from the press conference, which kicked off the day at the American Geophysical Union’s fall meeting in San Francisco.

The Mars Phoenix lander also saw evidence of this chlorine-oxygen compound, which could conceivably be used as an energy source by Martian microbes.

The analysis of these chemicals--which involves baking samples inside SAM’s oven and measuring the vapors that come out--in and of itself created new chemicals which the sensitive instruments picked up. Among those newly formed chemicals were some chlorinated methane compounds.

The chlorine is from Mars, Mahaffy said. The carbon’s origin is still unclear. Scientists will try to figure it out by measuring isotope ratios and making other measurements.

Other results from Curiosity’s first few months on Mars include some analysis of the soil and rocks, which are apparently very similar in both chemical composition and appearance to rocks in other spots on the planet.

The Pathfinder, Spirit and Opportunity rovers saw very similar soil in different locations. At Curiosity’s present location, Rocknest, a site in Gale Crater, the soil is about half volcanic material and half crystalline materials, like glass.

Interestingly, the water bound up in this soil is much, much heavier than water in Earth’s oceans, Mahaffy said.

Scientists, Curiosity followers and Marsphiles around the world eagerly awaited Monday’s announcement because of earlier rumours and speculation that the rover team was about to share something “Earth-shaking.”

Curiosity is not designed to find life, just evidence of environments that could have played host to it at some point.

Finding organic molecules would be an interesting step toward an eventual life-finding experiment. Organic compounds in this case means carbon-containing complex molecules, not something alive (or formerly alive).

These compounds rain down on all terrestrial planets and are found throughout space, and they do not necessarily indicate the presence of life.

For one small drift of sand, the SAM and CheMin (for Chemistry and Mineralogy) instruments did a whole lot of work, said Curiosity’s project scientist, John Grotzinger of the California Institute of Technology (CALTECH) in Pasadena.

“We used almost every part of our science payload examining this drift,” he said in a statement.

A couple weeks ago, Grotzinger was quoted in a story by NPR saying some freshly downloaded data from SAM would be “one for the history books.”

This statement created great speculation about what the results could be, although the agency tried to manage the expectations downwards.

Grotzinger said today he was misunderstood, and that he meant that the continuity of data from SAM, and the mission as a whole, would be historic in its breadth and depth.

“I’ve learned that you have to be careful about what you say and even more careful about how you say it,” he told reporters Monday. “We work at the speed of science. The rest of the world works at the speed of Instagram.”

Friday, October 19, 2012

NASA Mars Rover Curiosity: First Sample Collection - Video

Rover Curiosity carries 10 instruments to help it determine whether its Gale Crater landing site has ever been capable of supporting microbial life. But CheMin and another instrument on the 1-ton rover's body, known as Sample Analysis at Mars (SAM), are the rover's core scientific gear.

SAM is a chemistry laboratory that can identify organic compounds — the carbon-containing building blocks of life as we know it. The instrument has been sniffing the Martian air already, but it has yet to analyze its first soil sample. That should change in a week or so, Grotzinger said, after further cleaning of the rover's sampling system.

Curiosity continues to be in good health, researchers said. After the six-wheeled robot finishes testing out its scooping and sampling systems at Rocknest, mission scientists will begin searching for a spot to break out the rover's rock-boring drill. The first drill activity will be a complicated affair that could take month or so all up, Grotzinger said.

Curiosity is currently checking out deposits near a site called "Glenelg," where three interesting types of Martian terrain come together. But its ultimate destination is the base of Mount Sharp, the 3.4-mile-high (5.5 kilometers) mountain rising from Gale Crater's center.

Mount Sharp's foothills show signs of long-ago exposure to liquid water. Curiosity could be ready to start rolling toward the mountain's interesting deposits — which lie about 6 miles (10 km) away — in a couple of months.

"I would hope we'd be on our way by the end of the year," Grotzinger said.