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Friday, August 19, 2016

JPL News - Day in Review

 

DAY IN REVIEW
NASA JPL latest news release
Full-Circle Vista from NASA Mars Rover Curiosity Shows 'Murray Buttes'

Eroded mesas and buttes reminiscent of the U.S. Southwest shape part of the horizon in the latest 360-degree color panorama from NASA's Curiosity Mars rover.

The rover used its Mast Camera (Mastcam) to capture dozens of component images of this scene on Aug. 5, 2016, four years after Curiosity's landing inside Gale Crater.

The visual drama of Murray Buttes along Curiosity's planned route up lower Mount Sharp was anticipated when the site was informally named nearly three years ago to honor Caltech planetary scientist Bruce Murray (1931-2013), a former director of NASA's Jet Propulsion Laboratory, Pasadena, California. JPL manages the Curiosity mission for NASA.

The buttes and mesas are capped with rock that is relatively resistant to wind erosion. This helps preserve these monumental remnants of a layer that formerly more fully covered the underlying layer that the rover is now driving on.

Early in its mission on Mars, Curiosity accomplished its main goal when it found and examined an ancient habitable environment. In an extended mission, the rover is examining successively younger layers as it climbs the lower part of Mount Sharp. A key goal is to learn how freshwater lake conditions, which would have been favorable for microbes billions of years ago if Mars has ever had life, evolved into harsher, arid conditions much less suited to supporting life. The mission is also monitoring the modern environment of Mars.

These findings have been addressing high-priority goals for planetary science and further aid NASA's preparations for a human mission to the Red Planet.

For more information about Curiosity, visit:

http://www.nasa.gov/msl

http://mars.nasa.gov/msl

 


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Monday, August 15, 2016

JPL News - Day in Review

 

DAY IN REVIEW
NASA JPL latest news release
NASA Study Analyzes Four Corners Methane Sources

In an extensive airborne survey, a NASA-led team has analyzed a previously identified "hot spot" of methane emissions in the Four Corners region of the United States, quantifying both its overall magnitude and the magnitudes of its sources. The study finds that just 10 percent of the individual methane sources are contributing half of the emissions.

Scientists from NASA's Jet Propulsion Laboratory and Caltech, both in Pasadena, California; the National Oceanic and Atmospheric Administration (NOAA), Boulder, Colorado; and the University of Michigan, Ann Arbor, used two JPL airborne spectrometers to identify and measure more than 250 individual sources of methane. The sources emitted the gas at rates ranging from a few pounds to 11,000 pounds (5,000 kilograms) per hour. Results are published this week in the Proceedings of the National Academy of Sciences in a paper titled "Airborne methane remote measurements reveal heavy-tail flux distribution in Four Corners region." Christian Frankenberg of JPL and Caltech is the lead author.

As a greenhouse gas, methane is very efficient at trapping heat in Earth's atmosphere, contributing to global warming. In the Four Corners region, where Arizona, Colorado, New Mexico and Utah meet, methane emissions are primarily associated with the production and transport of natural gas from coal beds. The odorless, colorless gas is difficult to detect without scientific instruments.

The experiment was a proof of concept for airborne detection of methane, according to Frankenberg. "That we could observe this distribution in a widespread geographical area and collect enough plumes to perform a statistical analysis was a pleasant surprise," he said.

A group of researchers including Frankenberg originally detected the Four Corners methane hot spot using past observations from a European satellite. Last year, he and JPL colleagues joined a campaign, led and funded by NOAA, to investigate the hot spot, called Twin Otter Projects Defining Oil/gas Well emissioNs (TOPDOWN). The campaign also included researchers from the University of Michigan. Each participating institution deployed its own suite of instruments.

The NASA spectrometers used in the study can identify certain atmospheric gases, including methane, by the way the gases absorb sunlight. NOAA provided airborne plume measurements that were used to calibrate and validate the NASA data.

NASA collects data from space, air, land and sea to increase our understanding of our home planet, improve lives and safeguard our future. NASA develops new ways to observe and study Earth's interconnected natural systems with long-term data records. The agency freely shares this unique knowledge and works with institutions around the world to gain new insights into how our planet is changing.

For more information about NASA's Earth science activities, visit:

http://www.nasa.gov/earth

Full paper

 

 


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Friday, August 12, 2016

JPL News - Day in Review

 

DAY IN REVIEW
NASA JPL latest news release
Kepler Watches Stellar Dancers in the Pleiades Cluster.

Like cosmic ballet dancers, the stars of the Pleiades cluster are spinning. But these celestial dancers are all twirling at different speeds. Astronomers have long wondered what determines the rotation rates of these stars.

By watching these stellar dancers, NASA's Kepler space telescope during its K2 mission has helped amass the most complete catalog of rotation periods for stars in a cluster. This information can help astronomers gain insight into where and how planets form around these stars, and how such stars evolve.

"We hope that by comparing our results to other star clusters, we will learn more about the relationship between a star's mass, its age, and even the history of its solar system," said Luisa Rebull, a research scientist at the Infrared Processing and Analysis Center at Caltech in Pasadena, California. She is the lead author of two new papers and a co-author on a third paper about these findings, all being published in the Astronomical Journal.

The Pleiades star cluster is one of the closest and most easily seen star clusters, residing just 445 light-years away from Earth, on average. At about 125 million years old, these stars -- known individually as Pleiads -- have reached stellar "young adulthood." In this stage of their lives, the stars are likely spinning the fastest they ever will.

As a typical star moves further along into adulthood, it loses some zip due to the copious emission of charged particles known as a stellar wind (in our solar system, we call this the solar wind). The charged particles are carried along the star's magnetic fields, which overall exerts a braking effect on the rotation rate of the star.

Rebull and colleagues sought to delve deeper into these dynamics of stellar spin with Kepler. Given its field of view on the sky, Kepler observed approximately 1,000 stellar members of the Pleiades over the course of 72 days. The telescope measured the rotation rates of more than 750 stars in the Pleiades, including about 500 of the lowest-mass, tiniest, and dimmest cluster members, whose rotations could not previously be detected from ground-based instruments.

Kepler measurements of starlight infer the spin rate of a star by picking up small changes in its brightness. These changes result from "starspots" which, like the more-familiar sunspots on our sun, form when magnetic field concentrations prevent the normal release of energy at a star's surface. The affected regions become cooler than their surroundings and appear dark in comparison.

As stars rotate, their starspots come in and out of Kepler's view, offering a way to determine spin rate. Unlike the tiny, sunspot blemishes on our middle-aged sun, starspots can be gargantuan in stars as young as those in the Pleiades because stellar youth is associated with greater turbulence and magnetic activity. These starspots trigger larger brightness decreases, and make spin rate measurements easier to obtain.

During its observations of the Pleiades, a clear pattern emerged in the data: More massive stars tended to rotate slowly, while less massive stars tended to rotate rapidly. The big-and-slow stars' periods ranged from one to as many as 11 Earth-days. Many low-mass stars, however, took less than a day to complete a pirouette. (For comparison, our sedate sun revolves fully just once every 26 days.) The population of slow-rotating stars includes some ranging from a bit larger, hotter and more massive than our sun, down to other stars that are somewhat smaller, cooler and less massive. On the far end, the fast-rotating, fleet-footed, lowest-mass stars possess as little as a tenth of our sun's mass.

"In the 'ballet' of the Pleiades, we see that slow rotators tend to be more massive, whereas the fastest rotators tend to be very light stars," said Rebull.

The main source of these differing spin rates is the internal structure of the stars, Rebull and colleagues suggest. Larger stars have a huge core enveloped in a thin layer of stellar material undergoing a process called convection, familiar to us from the circular motion of boiling water. Small stars, on the other hand, consist almost entirely of convective, roiling regions. As stars mature, the braking mechanism from magnetic fields more easily slows the spin rate of the thin, outermost layer of big stars than the comparatively thick, turbulent bulk of small stars.

Thanks to the Pleiades' proximity, researchers think it should be possible to untangle the complex relationships between stars' spin rates and other stellar properties. Those stellar properties, in turn, can influence the climates and habitability of a star's hosted exoplanets. For instance, as spinning slows, so too does starspot generation, and the solar storms associated with starspots. Fewer solar storms means less intense, harmful radiation blasting into space and irradiating nearby planets and their potentially emerging biospheres.

"The Pleiades star cluster provides an anchor for theoretical models of stellar rotation going both directions, younger and older," said Rebull. "We still have a lot we want to learn about how, when and why stars slow their spin rates and hang up their 'dance shoes,' so to speak."

Rebull and colleagues are now analyzing K2 mission data from an older star cluster, Praesepe, popularly known as the Beehive Cluster, to further explore this phenomenon in stellar structure and evolution.

"We're really excited that K2 data of star clusters, such as the Pleiades, have provided astronomers with a bounty of new information and helped advance our knowledge of how stars rotate throughout their lives," said Steve Howell, project scientist for the K2 mission at NASA's Ames Research Center in Moffett Field, California.

The K2 mission's approach to studying stars employs the Kepler spacecraft's ability to precisely observe miniscule changes in starlight. Kepler's primary mission ended in 2013, but more exoplanet and astrophysics observations continue with the K2 mission, which began in 2014.

Ames manages the Kepler and K2 missions for NASA's Science Mission Directorate. NASA's Jet Propulsion Laboratory in Pasadena, California, managed Kepler mission development. Ball Aerospace & Technologies Corporation operates the flight system with support from the Laboratory for Atmospheric and Space Physics at the University of Colorado at Boulder.

 


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Thursday, August 11, 2016

JPL News - Day in Review

 

DAY IN REVIEW
NASA JPL latest news release
A.I. Could Be a Firefighter's 'Guardian Angel'

Firefighters have only their wits and five senses to rely on inside a burning building. But research developed in part by NASA's Jet Propulsion Laboratory, Pasadena, California, may change that, introducing artificial intelligence (AI) that could collect data on temperatures, gases and other danger signals and guide a team of first responders safely through the flames.

AUDREY, the Assistant for Understanding Data through Reasoning, Extraction, and sYnthesis, has received the Undersecretary's Award for Collaboration from the Department of Homeland Security (DHS) in recognition of its joint development by JPL and DHS. It's part of the Next Generation First Responder (NGFR) program, a DHS initiative to innovate new ways to keep firefighters, police, paramedics and other first responders safe in the field through increased awareness of their surroundings and communication abilities.

But the big picture is even more exciting: AUDREY can track an entire team of firefighters, sending relevant signals to individuals while helping to make recommendations for how they could work together.

"As a firefighter moves through an environment, AUDREY could send alerts through a mobile device or head-mounted display," said Mark James of JPL, lead scientist for the AUDREY project.

AUDREY is designed to be integrated with the "Internet of Things" -- the idea of numerous devices and sensors all wirelessly "talking" to one another. In the case of firefighters, wearable sensors in their clothes could pick up their GPS location, heat in other rooms, the presence of dangerous chemicals and gases, satellite imagery of a location and much more.

"When first responders are connected to all these sensors, the AUDREY agent becomes their guardian angel," said Edward Chow, manager of JPL's Civil Program Office and program manager for AUDREY. "Because of all this data the sensor sees, firefighters won't run into the next room where the floor will collapse."

John Merrill, NGFR program manager for the DHS Science and Technology Directorate, said that technology is rapidly providing new strengths for first responders in the field.

"The proliferation of miniaturized sensors and Internet of Things devices can make a tremendous impact on first responder safety, connectivity, and situational awareness," Merrill said. "The massive amount of data available to the first responder is incomprehensible in its raw state and must be synthesized into useable, actionable information."

Guardian angel in the cloud

AUDREY is designed to keep watch from above. As a cloud-based piece of software, it can do more than send data to those in the field. As it watches an event, it can actually learn and start making predictions about what resources will be needed next.

James said the system is designed to recognize the specific roles of first responders in the field. This allows AUDREY to provide potentially lifesaving information customized to the various roles, which avoids overloading the users.

"Since AUDREY knows the roles of everyone who receives her data, she only supplies the relevant information that is appropriate for them," James said.

In June, AUDREY was tested in a virtual demonstration at the Public Safety Broadband Stakeholder Meeting held by the Department of Commerce in San Diego. It was fed data from a variety of sensors and asked to make safety recommendations, which it then sent to a mobile device. Within a year, Chow said, the plan is to test AUDREY in field demonstrations.

From machine to human-like thinking

Chow emphasized that artificial intelligence is only as effective as the data it's working with. The more data it has, the higher the probability that it will make useful recommendations.

"Most A.I. projects are rule-based -- if this, then that," he said. "But what if you're only getting part of the information? We use complex reasoning to simulate how humans think. That allows us to provide more useful info to firefighters than a traditional A.I. system."

AUDREY includes several technologies developed by NASA and the Department of Defense over the last five years. AUDREY for NGFR has been in development for nine months and is funded by the Department of Homeland Security. Caltech manages JPL for NASA.

 


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Wednesday, August 10, 2016

JPL News - Day in Review

 

DAY IN REVIEW
NASA JPL latest news release
Cassini Finds Flooded Canyons on Titan

NASA's Cassini spacecraft has found deep, steep-sided canyons on Saturn's moon Titan that are flooded with liquid hydrocarbons. The finding represents the first direct evidence of the presence of liquid-filled channels on Titan, as well as the first observation of canyons hundreds of meters deep.

A new paper in the journal Geophysical Research Letters describes how scientists analyzed Cassini data from a close pass the spacecraft made over Titan in May 2013. During the flyby, Cassini's radar instrument focused on channels that branch out from the large, northern sea Ligeia Mare.

The Cassini observations reveal that the channels -- in particular, a network of them named Vid Flumina -- are narrow canyons, generally less than half a mile (a bit less than a kilometer) wide, with slopes steeper than 40 degrees. The canyons also are quite deep -- those measured are 790 to 1,870 feet (240 to 570 meters) from top to bottom.

The branching channels appear dark in radar images, much like Titan's methane-rich seas. This suggested to scientists that the channels might also be filled with liquid, but a direct detection had not been made until now. Previously it wasn't clear if the dark material was liquid or merely saturated sediment -- which at Titan's frigid temperatures would be made of ice, not rock.

Cassini's radar is often used as an imager, providing a window to peer through the dense haze that surrounds Titan to reveal the surface below. But during this pass, the radar was used as an altimeter, sending pings of radio waves to the moon's surface to measure the height of features there. The researchers combined the altimetry data with previous radar images of the region to make their discovery.

Key to understanding the nature of the channels was the way Cassini's radar signal reflected off the bottoms of the features. The radar instrument observed a glint, indicating an extremely smooth surface like that observed from Titan's hydrocarbon seas. The timing of the radar echoes, as they bounced off the canyons' edges and floors, provided a direct measure of their depths.

The presence of such deep cuts in the landscape indicates that whatever process created them was active for a long time or eroded down much faster than other areas on Titan's surface. The researchers' proposed scenarios include uplift of the terrain and changes in sea level, or perhaps both.

"It's likely that a combination of these forces contributed to the formation of the deep canyons, but at present it's not clear to what degree each was involved. What is clear is that any description of Titan's geological evolution needs to be able to explain how the canyons got there," said Valerio Poggiali of the University of Rome, a Cassini radar team associate and lead author of the study.

Earthly examples of both of these types of canyon-carving processes are found along the Colorado River in Arizona. An example of uplift powering erosion is the Grand Canyon, where the terrain's rising altitude caused the river to cut deeply downward into the landscape over the course of several million years. For canyon formation driven by variations in water level, look to Lake Powell. When the water level in the reservoir drops, it increases the river's rate of erosion.

"Earth is warm and rocky, with rivers of water, while Titan is cold and icy, with rivers of methane. And yet it's remarkable that we find such similar features on both worlds," said Alex Hayes, a Cassini radar team associate at Cornell University, Ithaca, New York, and a co-author of the study.

While the altimeter data also showed that the liquid in some of the canyons around Ligeia Mare is at sea level -- the same altitude as the liquid in the sea itself -- in others it sits tens to hundreds of feet (tens of meters) higher in elevation. The researchers interpret the latter to be tributaries that drain into the main channels below.

Future work will extend the methods used in this study to all other channels Cassini's radar altimeter has observed on Titan. The researchers expect their continued work to produce a more comprehensive understanding of forces that have shaped the Saturnian moon's landscape.

The Cassini-Huygens mission is a cooperative project of NASA, ESA (European Space Agency) and the Italian Space Agency. NASA's Jet Propulsion Laboratory, a division of Caltech in Pasadena, manages the mission for NASA's Science Mission Directorate, Washington. JPL designed, developed and assembled the Cassini orbiter. The radar instrument was built by JPL and the Italian Space Agency, working with team members from the US and several European countries.

More information about Cassini:

http://www.nasa.gov/cassini

http://saturn.jpl.nasa.gov

 


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Monday, August 8, 2016

JPL News - Day in Review

 

DAY IN REVIEW
NASA JPL latest news release
NuSTAR Principal Investigator Honored for Research

Fiona Harrison, principal investigator of NASA's NuSTAR (Nuclear Spectroscopic Telescope Array) mission, has been selected to receive the 2016 Massey Award, given by the Committee on Space Research (COSPAR).

The Massey Award honors "outstanding contributions to the development of space research in which a leadership role is of particular importance" and honors the memory of Sir Harrie Massey.

"It has been great to work with such a strong and talented team on NuSTAR," said Harrison, a professor of astronomy at Caltech. "The whole team deserves credit in NuSTAR's success."

NuSTAR launched in June 2012, opening a new window to the universe as the first focusing telescope to operate in a high-frequency band of X-rays called hard X-rays.

Among NuSTAR's accomplishments so far, the observatory created the first map of radioactive material in a supernova remnant. The remnant, called Cassiopeia A, is the blown out pieces of an exploded star, which produced traces of the radioactive isotope titanium-44. NuSTAR also detected this substance in the remnant of supernova 1987A in the Large Magellanic Cloud. Such research shows how shock waves likely rip apart large dying stars.

The NuSTAR team also discovered emission from a special type of neutron star called a magnetar, which has an extremely strong magnetic field. This object was the first pulsar -- a dead stellar remnant that emits beams of radiation as it spins -- discovered near the black hole at the center of the Milky Way.

Additionally, astronomers used NuSTAR data to find the brightest pulsar ever recorded. This astonishing object has helped astronomers refine their theories about sources of blinding X-rays called ultraluminous X-ray sources (ULXs). Most scientists believed that these sources were black holes more than 1,000 times the mass of our sun. But NuSTAR found that one such source, the extremely bright Messier 82, is actually a pulsar, not a black hole.

"These and many other discoveries make Fiona Harrison one of the most active leaders of modern high energy astrophysics," the award citation notes.

Harrison has been the principal investigator since the mission was founded in 2005. After earning a doctoral degree in physics at the University of California, Berkeley, she first came to Caltech in 1993 as a research fellow. She began her professorial career at Caltech in 1995, and is currently the Benjamin M. Rosen Professor of Physics and Kent and Joyce Kresa Leadership Chair of the Division of Physics, Mathematics and Astronomy there.

The mission will continue to allow astronomers to explore such topics as the evolution of massive black holes, the deaths of stars and the creation of heavy elements in supernova explosions.

For more information on NuSTAR, visit:

http://www.nasa.gov/nustar

http://nustar.caltech.edu

 


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Thursday, August 4, 2016

JPL News - Day in Review

 

DAY IN REVIEW
NASA Rover Game Released for Curiosity's Anniversary
Nearing the fourth anniversary of Curiosity landing on Mars, the rover works on collecting a 17th sample, while Earthlings can play a new social media game about Mars exploration.
› Read the full story
Study Maps Hidden Water Pollution in U.S. Coastal Areas
A new study finds coastal waters and water supplies along a fifth of U.S. coasts are vulnerable to pollution from hidden underground water transfers between oceans and land.
› Read the full story

 


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Wednesday, August 3, 2016

JPL News - Day in Review

 

DAY IN REVIEW
What's Inside Ceres? New Findings from Gravity Data
A new study suggests Ceres has a weak interior, and that water and other light materials separated from rock during a heating phase early in its history.
› Read the full story
NASA Maps Thawed Areas Under Greenland Ice Sheet
NASA has helped produce the first map of thawing at the bottom of the Greenland Ice Sheet -- key information in better predicting how it will react to a warming climate.
› Read the full story

 


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