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Showing posts with label goddard space flight center. Show all posts
Showing posts with label goddard space flight center. Show all posts

Thursday, July 7, 2011

Hurricane Season 2011: Tropical Depression 3E (Eastern Pacific)

NASA's TRMM Satellite Sees Third Tropical Depression Form in E. Pacific

The Tropical Rainfall Measuring Mission (TRMM) satellite passed over an area of low pressure in the eastern Pacific Ocean south of Mexico on July 7, 2011 at 0234 UTC (July 6 at 10:34 EDT) and captured rainfall in the newly formed third tropical depression of the hurricane season.

The National Hurricane Center (NHC) in Miami, Florida upgraded this area of low pressure to a tropical depression at 1500 UTC (8:00 a.m. PDT). At that time, maximum sustained winds were near 35 mph (55 km/h) and the center was located near 14.8 North and 101.2 West, which is about 355 miles (570 km) southeast of Manzanillo, Mexico. Tropical Depression 3E is moving to the west-northwest near 13 mph (20 km/h) and has a minimum central pressure of 1005 millibars.

The rainfall analysis from TRMM's Microwave Imager (TMI) and Precipitation Radar (PR) data was overlaid on an infrared image from TRMM's Visible and InfraRed Scanner (VIRS) by Hal Pierce of SSAI at NASA's Goddard Space Flight Center in Greenbelt, Md. The analysis showed that there were only a few areas of moderate to heavy rainfall associated with the developing tropical depression at the time of this TRMM orbit.

The strongest rainfall (about 2 inches/50 mm per hour) appeared in isolated areas south of the center of circulation. The moderate rainfall was falling at a rate between .78 and 1.57 inches (20 and 40 mm) per hour.

Conditions are expected to be favorable for the depression to become a tropical storm within the next couple days, and when it does, it would be renamed "Calvin." The storm is expected to remain over open waters well south of the coast of southwestern Mexico.

Text credit:Hal Pierce, SSAI/NASA's Goddard Space Flight Center, Greenbelt, Md.
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Tuesday, July 5, 2011

NASA'S Hubble Makes One Millionth Science Observation

Trent Perrotto
Headquarters, Washington
 
Ray Villard
Space Telescope Science Institute, Baltimore

WASHINGTON -- NASA's Hubble Space Telescope crossed another milestone in its space odyssey of exploration and discovery. On Monday, July 4, the Earth-orbiting observatory logged its one millionth science observation during a search for water in an exoplanet's atmosphere 1,000 light-years away.

"For 21 years Hubble has been the premier space science observatory, astounding us with deeply beautiful imagery and enabling ground-breaking science across a wide spectrum of astronomical disciplines," said NASA Administrator Charles Bolden. He piloted the space shuttle mission that carried Hubble to orbit. "The fact that Hubble met this milestone while studying a faraway planet is a remarkable reminder of its strength and legacy."

Although Hubble is best known for its stunning imagery of the cosmos, the millionth observation is a spectroscopic measurement, where light is divided into its component colors. These color patterns can reveal the chemical composition of cosmic sources.

Hubble's millionth exposure is of the planet HAT-P-7b, a gas giant planet larger than Jupiter orbiting a star hotter than our sun. HAT-P-7b, also known as Kepler 2b, has been studied by NASA's planet-hunting Kepler observatory after it was discovered by ground-based observations. Hubble now is being used to analyze the chemical composition of the planet's atmosphere.

"We are looking for the spectral signature of water vapor. This is an extremely precise observation and it will take months of analysis before we have an answer," said Drake Deming of the University of Maryland and NASA's Goddard Space Flight Center in Greenbelt, Md. "Hubble demonstrated it is ideally suited for characterizing the atmospheres of exoplanets, and we are excited to see what this latest targeted world will reveal."

Hubble was launched April 24, 1990, aboard space shuttle's Discovery's STS-31 mission. Its discoveries revolutionized nearly all areas of astronomical research from planetary science to cosmology. The observatory has collected more than 50 terabytes of data to-date. The archive of that data is available to scientists and the public at http://hla.stsci.edu/.

Hubble's odometer reading includes every observation of astronomical targets since its launch and observations used to calibrate its suite of instruments. Hubble made the millionth observation using its Wide Field Camera 3, a visible and infrared light imager with an on-board spectrometer. It was installed by astronauts during the Hubble Servicing Mission 4 in May 2009.

"The Hubble keeps amazing us with groundbreaking science," said Sen. Barbara A. Mikulski, the chairwoman of the Senate Commerce, Justice, Science and Related Agencies Appropriations Subcommittee that funds NASA. "I championed the mission to repair and renew Hubble not just to get one million science observations, but also to inspire millions of children across the planet to become our next generation of stargazers, scientists, astronauts and engineers."

Hubble is a project of international cooperation between NASA and the European Space Agency. Goddard manages the telescope. The Space Telescope Science Institute (STScI) conducts Hubble science operations. STScI is operated for NASA by the Association of Universities for Research in Astronomy Inc. in Washington.

For more information about Hubble, galleries of videos and images, visit http://www.nasa.gov/hubble and http://hubblesite.org/news/2011/22.

For details about the exoplanet Kepler 2b, including an animation of its orbit, visit http://kepler.nasa.gov/Mission/discoveries/kepler2b/.

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Thursday, June 30, 2011

NASA Completes Mirror Polishing For James Webb Space Telescope

Trent Perrotto
Headquarters, Washington
 
Mary Blake
Northrop Grumman, Redondo Beach, Calif.

WASHINGTON -- Mirrors are a critical part of a telescope. The quality is crucial, so completion of mirror polishing represents a major milestone. All of the mirrors that will fly aboard NASA's James Webb Space Telescope have been polished so the observatory can see objects as far away as the first galaxies in the universe.

The Webb telescope is comprised of four types of mirrors. The primary one has an area of approximately 25 square meters (29.9 square yards), which will enable scientists to capture light from faint, distant objects in the universe faster than any previous space observatory. The mirrors are made of Beryllium and will work together to relay images of the sky to the telescope's science cameras.

"Webb's mirror polishing always was considered the most challenging and important technological milestone in the manufacture of the telescope, so this is a hugely significant accomplishment," said Lee Feinberg, Webb Optical Telescope manager at NASA's Goddard Space Flight Center in Greenbelt, Md.

The mirrors were polished at the L3 Integrated Optical Systems - Tinsley in Richmond, Calif. to accuracies of less than one millionth of an inch. That accuracy is important for forming the sharpest images when the mirrors cool to -400°F (-240°C) in the cold of space.

"The completion of the mirror polishing shows that the strategy of doing the hardest things first has really paid off," said Nobel Prize Winner John C. Mather, Webb's senior project scientist at Goddard. "Some astronomers doubted we could make these mirrors."

After polishing, the mirrors are being coated with a microscopically thin layer of gold to enable them to efficiently reflect infrared light. NASA has completed coating 13 of 18 primary mirror segments and will complete the rest by early next year. The 18 segments fit together to make one large mirror 21.3 feet (6.5 meters) across.

"This milestone is the culmination of a decade-long process," said Scott Willoughby, vice president and Webb Telescope Program manager for Northrop Grumman Aerospace Systems. "We had to invent an entire new mirror technology to give Webb the ability to see back in time."

Northrop Grumman Corp. in Redondo Beach, Calif. is the telescope's prime contractor.

As the successor to the Hubble Space Telescope, the Webb telescope is the world's next-generation space observatory. It is the most powerful space telescope ever built. More than 75 percent of its hardware is either in production or undergoing testing. The telescope will observe the most distant objects in the universe, provide images of the first galaxies ever formed and study planets around distant stars. NASA, the European Space Agency and the Canadian Space Agency are collaborating on this project.

For related images and more information about the mirrors, visit http://www.nasa.gov/topics/universe/features/webb-mirrors-done.html.

To view the "Behind the Webb: Wax on, Wax Off" video explaining the mirror polishing process, visit http://webbtelescope.org/webb_telescope/behind_the_webb/10.

For more information about the James Webb Space Telescope, visit http://www.jwst.nasa.gov.

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NASA Completes Mirror Polishing For James Webb Space Telescope

Trent Perrotto
Headquarters, Washington
 
Mary Blake
Northrop Grumman, Redondo Beach, Calif.

WASHINGTON -- Mirrors are a critical part of a telescope. The quality is crucial, so completion of mirror polishing represents a major milestone. All of the mirrors that will fly aboard NASA's James Webb Space Telescope have been polished so the observatory can see objects as far away as the first galaxies in the universe.

The Webb telescope is comprised of four types of mirrors. The primary one has an area of approximately 25 square meters (29.9 square yards), which will enable scientists to capture light from faint, distant objects in the universe faster than any previous space observatory. The mirrors are made of Beryllium and will work together to relay images of the sky to the telescope's science cameras.

"Webb's mirror polishing always was considered the most challenging and important technological milestone in the manufacture of the telescope, so this is a hugely significant accomplishment," said Lee Feinberg, Webb Optical Telescope manager at NASA's Goddard Space Flight Center in Greenbelt, Md.

The mirrors were polished at the L3 Integrated Optical Systems - Tinsley in Richmond, Calif. to accuracies of less than one millionth of an inch. That accuracy is important for forming the sharpest images when the mirrors cool to -400°F (-240°C) in the cold of space.

"The completion of the mirror polishing shows that the strategy of doing the hardest things first has really paid off," said Nobel Prize Winner John C. Mather, Webb's senior project scientist at Goddard. "Some astronomers doubted we could make these mirrors."

After polishing, the mirrors are being coated with a microscopically thin layer of gold to enable them to efficiently reflect infrared light. NASA has completed coating 13 of 18 primary mirror segments and will complete the rest by early next year. The 18 segments fit together to make one large mirror 21.3 feet (6.5 meters) across.

"This milestone is the culmination of a decade-long process," said Scott Willoughby, vice president and Webb Telescope Program manager for Northrop Grumman Aerospace Systems. "We had to invent an entire new mirror technology to give Webb the ability to see back in time."

Northrop Grumman Corp. in Redondo Beach, Calif. is the telescope's prime contractor.

As the successor to the Hubble Space Telescope, the Webb telescope is the world's next-generation space observatory. It is the most powerful space telescope ever built. More than 75 percent of its hardware is either in production or undergoing testing. The telescope will observe the most distant objects in the universe, provide images of the first galaxies ever formed and study planets around distant stars. NASA, the European Space Agency and the Canadian Space Agency are collaborating on this project.

For related images and more information about the mirrors, visit http://www.nasa.gov/topics/universe/features/webb-mirrors-done.html.

To view the "Behind the Webb: Wax on, Wax Off" video explaining the mirror polishing process, visit http://webbtelescope.org/webb_telescope/behind_the_webb/10.

For more information about the James Webb Space Telescope, visit http://www.jwst.nasa.gov.

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NASA Operations, Systems Engineering And Software Contract

Trent J. Perrotto
Headquarters, Washington                                   
                                                  
Cynthia M. O'Carroll                
Goddard Space Flight Center, Greenbelt, Md.

GREENBELT, Md. -- NASA awarded a follow-on contract to Lockheed Martin Space Systems Corporation (LMSSC) for Mission Operations, Systems Engineering and Software (MOSES-II) for the Hubble Space Telescope.

This is a five-year cost-plus-award fee sole source contract with LMSSC with a value of $133,070,796, which includes the maximum award fee.

Under this contract, LMSSC will continue to maintain Hubble's health and safety through the next phase of its science mission. The scope of this effort includes all elements of operations other than science operations, and systems engineering tasks required to maintain Hubble flight and ground systems.

Mission operations responsibilities include safe and efficient control and utilization of Hubble, maintenance and operation of its facilities and equipment, as well as creation, maintenance, and utilization of Hubble operations processes and procedures. Critical systems engineering responsibilities consist of optimizing mission system capabilities to ensure Hubble operations are effective to continue scientific results.

For more information about NASA and agency programs, visit
http://www.nasa.gov.

For more information about Hubble, visit http://www.nasa.gov/hubble.

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Wednesday, June 29, 2011

Hurricane Season 2011: Tropical Storm Arlene (Atlantic Ocean/Caribbean Sea)

NASA Satellites See Strong Thunderstorms, Heavy Rain as Arlene Nears Landfall

Two different NASA satellites provided valuable information about the hundreds of thunderstorms that make up Tropical Storm Arlene as it nears landfall in northeastern Mexico. NASA's Aqua satellite measured cloud top temperatures giving clues about the strength of storms, while the TRMM satellite measured rainfall rates and cloud heights. All of this data is useful to forecasters in predicting Arlene's next moves.

The Tropical Rainfall Measuring Mission (TRMM) satellite had a good look at Arlene when it passed above on June 29, 2011 at 0502 UTC (0:02 AM CDT). At that time Arlene's winds were estimated to be about 34 knots (~39 mph) indicating that it was barely a tropical storm.

TRMM's Microwave Imager (TMI) and Precipitation Radar (PR) data showed that Arlene was getting better organized and contained scattered heavy thunderstorms dropping rain at a rate of over 50 mm/hr (~2 inches). Some of the heaviest rainfall was not near the center of Arlene's circulation but was in feeder bands over land along the southwestern Gulf of Mexico. A 3-D analysis of Arlene's vertical structure using TRMM PR revealed that very powerful thunderstorms in a feeder band over the southeastern Yucatan Peninsula reached to heights of 17 km (~10.6 miles).

NASA's Aqua satellite passed over Tropical Storm Arlene on June 29, 2011 at 08:05 UTC (4:05 a.m. EDT). At that time, the Atmospheric Infrared Sounder (AIRS) instrument showed that most of Arlene's heaviest thunderstorms and coldest cloud top temperatures (-63F/-52C) were over the waters of the Gulf of Mexico. That data matched with the TRMM data that showed the heaviest rainfall was over open water.

At 1 p.m. EDT on June 29, Arlene's maximum sustained winds had increased to 50 mph (85 kmh). It was located just 95 miles (155 km) east of Tuxpan, Mexico and 150 miles east-southeast of Tampico. That put Arlene's center near 21.1 North and 95.9 West. It was moving west near 8 mph (13 kmh) and had a minimum central pressure of 1000 millibars. A hurricane watch is in effect for the coast of eastern Mexico from Barra De Nautla Northward to La Cruz and a tropical storm watch extends farther along the coast. For updates, visit: www.nhc.noaa.gov.

Residents in the area of the watches should prepare for gusty winds, heavy rainfall and rough surf.

Text credit: Rob Gutro, NASA's Goddard Space Flight Center, Greenbelt, Md.
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Friday, June 24, 2011

NASA Awards Contract For Geophysics, Geodynamics And Space Geodesy Support

Steve Cole
Headquarters, Washington                                   

Cynthia M. O'Carroll
Goddard Space Flight Center, Greenbelt, Md.
 
GREENBELT, Md. -- NASA has selected Stinger Ghaffarian Technologies Inc. (SGT) in Greenbelt, Md, to provide geophysics, geodynamics, and space geodesy support. The total maximum ordering value of the cost-plus-fixed fee, indefinite-delivery/indefinite- quantity contract will be $45 million. The effective ordering period is from July 1 through Aug. 31, 2015.

Under this contract, SGT will support a wide array of geodynamic, geomagnetic, geophysical, and atmospheric investigations of the Earth. Among the requirements for these investigations are instrument development; software development and maintenance; and data collection, archiving and dissemination. Contract work also includes scientific data analysis, modeling and interpretation; reports and presentations of scientific results; public outreach and education; and associated technical and administrative work.

SGT will provide support to investigators associated with current programs such as Interdisciplinary Studies in Earth Science; projects such as GRACE, the Ocean Surface Topography Mission, and ICESat; and future missions defined in the National Academy of Science Decadal Survey, such as ICESat-2 and SWOT.

The work will be performed at Goddard Space Flight Center in Greenbelt, Md., and at the SGT facility in Greenbelt.

For more information about NASA and agency programs, visit http://www.nasa.gov.

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Thursday, June 23, 2011

NASA To Highlight Robotic Refueling Mission Payload, Communication Support On Final Shuttle Flight

Joshua Buck
Headquarters, Washington                                        
 
Dewayne Washington
Goddard Space Flight Center, Greenbelt, Md.

GREENBELT, Md. -- NASA's Goddard Space Flight Center in Greenbelt, Md., will host a media event to highlight its role in the final space shuttle flight, currently targeted for launch on July 8. The media day will be held from 9 a.m. to noon EDT on Tuesday, June 28.

At 9 a.m., Goddard managers and engineers will give an overview of the Robotic Refueling Mission (RRM) module, which shuttle Atlantis will deliver to the International Space Station. RRM will use the station's two-armed robotic system, known as Dextre, to investigate the potential for robotically refueling existing spacecraft in orbit. The Canadian Space Agency built the Special Purpose Dexterous Manipulator, or Dextre, to perform intricate maintenance and servicing tasks on the station.

Reporters also will visit Goddard's Exploration and Space Communications area to learn how Goddard provides tracking, data and voice communications for every shuttle mission. Reporters then will have the opportunity to see the Network Integration Center and the Flight Dynamics Facility, which also support shuttle flights.

To attend, reporters must contact Dewayne Washington at 301-286-0040 or dewayne.a.washington@nasa.gov or Malissa Reyes at 301-286-0918 by June 27 to reserve space and provide names for security badges. Reporters should meet at the Goddard Visitor's Center, located off Greenbelt Road (State Route 193) and ICESat Road no later than 8:45 a.m. on June 28 to allow sufficient time for everyone to receive badges. A shuttle will take reporters to the various sites.

For information about NASA's Goddard Space Flight Center, visit http://www.nasa.gov/goddard.

For information about RRM, visit http://ssco.gsfc.nasa.gov.

For information about ESC, visit http://esc.gsfc.nasa.gov.

For information about the STS-135 mission, visit http://go.nasa.gov/STS-135.

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Wednesday, June 22, 2011

NASA Details Achievements Of Lunar Spacecraft

J.D. Harrington/Michael Braukus     
Headquarters, Washington     
 
Nancy Neal Jones/Elizabeth Zubritsky
Goddard Space Flight Center, Greenbelt, Md.

WASHINGTON -- NASA has declared full mission success for the Lunar Reconnaissance Orbiter (LRO). LRO changed our view of the entire moon and brought it into sharper focus with unprecedented detail.

NASA's Exploration Systems Mission Directorate (ESMD) operated the LRO spacecraft and its instruments during the one-year mission phase. Now that the final data from the instruments have been added to the agency's Planetary Data System, the mission has completed the full success requirements. The data system, which is publicly available, archives data from past and present planetary missions as well as astronomical observations and laboratory data.

The rich new portrait rendered by LRO's seven instruments is the result of more than 192 terabytes of data, images and maps, the equivalent of nearly 41,000 typical DVDs.

"LRO is now in the very capable hands of NASA's Science Mission Directorate, with ongoing, near continuous acquisition of science data," said Douglas Cooke, associate administrator of ESMD at NASA Headquarters in Washington. "Exploration will be well served by the LRO science mission, just as the LRO exploration mission has benefited lunar science."

The primary objective of the mission was to enable safe and effective exploration of the moon. "We needed to leverage the very best the science community had to offer," said Michael Wargo, chief lunar scientist of ESMD. "And by doing that, we've fundamentally changed our scientific understanding of the moon."

The most precise and complete topographic maps to date of the moon's complex, heavily cratered landscape have been created from more than four billion measurements, which are still coming in, taken by LRO's Lunar Orbiter Laser Altimeter (LOLA). LOLA has taken more than 100 times more measurements than all previous lunar instruments of its kind combined, opening up a world of possibilities for future exploration and for science.

The Lunar Reconnaissance Orbiter Camera (LROC) revealed stunning details after imaging nearly 5.7 million square kilometers of the moon's surface during the mission's exploration phase. That is roughly the same amount of land as all contiguous states west of the Mississippi River. Though earlier missions also imaged the moon, what sets LROC apart is its ability to image with surface pixels that are only 1.5 feet in size, small enough to distinguish details never before possible.

"With this resolution, LRO could easily spot a picnic table on the moon," said LRO's Project Scientist Richard Vondrak of NASA's Goddard Space Flight Center in Greenbelt, Md.

While studying the Hermite crater near the moon's north pole, LRO's Diviner Lunar Radiometer Experiment found the coldest spot in the solar system, with a temperature of minus 415 degrees Fahrenheit (minus 248 degrees Celsius or 25 kelvins).

To further explore these regions, LRO's Lyman Alpha Mapping Project, which can "see" in the dark, is imaging the shaded areas, while LOLA's precise measurements map solar illumination. This work has provided new insight into the shadowed regions and also revealed areas that receive nearly continuous sun. Because sunlight itself is a resource on the moon, knowing there are areas that get sun for approximately 243 days a year and never have a period of total darkness for more than 24 hours is extremely valuable.

Complementing those efforts are both the Lunar Exploration Neutron Detector (LEND) and the Miniature Radio Frequency advanced radar, which are searching for deposits of water ice. LEND also seeks hydrogen, which could be used potentially as fuel. LRO's Cosmic Ray Telescope for the Effects of Radiation is studying the lunar radiation environment, which is important to keep astronauts healthy and safe.

LRO launched aboard an Atlas V rocket from Cape Canaveral, Fla., on June 18, 2009.

The spacecraft was built and is managed by Goddard. For more information about LRO, visit http://www.nasa.gov/LRO.

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Sunday, June 19, 2011

NASA Schedules Telecon To Highlight Lunar Mission Results

J.D. Harrington/Michael Braukus
Headquarters, Washington
 
Nancy Neal-Jones
Goddard Space Flight Center, Greenbelt, Md.

WASHINGTON -- NASA will host a media teleconference at 2 p.m. EDT on Tuesday, June 21, to highlight the results of the Lunar Reconnaissance Orbiter (LRO) mission. A panel will summarize the spacecraft's science findings and discuss the agency's plans for LRO's future.

Telecon panelists are:
-- Douglas Cooke, associate administrator, Exploration Systems Mission Directorate at NASA Headquarters in Washington
-- Michael Wargo, chief lunar scientist for exploration at NASA Headquarters
-- Richard Vondrak, LRO project scientist at NASA's Goddard Space Flight Center in Greenbelt, Md.

To participate, reporters must e-mail their name, media affiliation and telephone number to J.D. Harrington at j.d.harrington@nasa.gov by 1 p.m. EDT Tuesday.

NASA will stream live audio of the teleconference at http://www.nasa.gov/newsaudio.

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

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Friday, June 17, 2011

NASA Schedules Telecon To Highlight Lunar Mission Results

J.D. Harrington/Michael Braukus
Headquarters, Washington
 
Nancy Neal-Jones
Goddard Space Flight Center, Greenbelt, Md.

WASHINGTON -- NASA will host a media teleconference at 2 p.m. EDT on Tuesday, June 21, to highlight the results of the Lunar Reconnaissance Orbiter (LRO) mission. A panel will summarize the spacecraft's science findings and discuss the agency's plans for LRO's future.

Telecon panelists are:
-- Douglas Cooke, associate administrator, Exploration Systems Mission Directorate at NASA Headquarters in Washington
-- Michael Wargo, chief lunar scientist for exploration at NASA Headquarters
-- Richard Vondrak, LRO project scientist at NASA's Goddard Space Flight Center in Greenbelt, Md.

To participate, reporters must e-mail their name, media affiliation and telephone number to J.D. Harrington at j.d.harrington@nasa.gov by 1 p.m. EDT Tuesday.

NASA will stream live audio of the teleconference at http://www.nasa.gov/newsaudio.

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

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Monday, June 13, 2011

NASA'S "Age Of Aquarius" Dawns With Launch From California

Steve Cole
Headquarters, Washington     
 
Alan Buis
Jet Propulsion Laboratory, Pasadena, Calif.

WASHINGTON -- NASA's 'Age of Aquarius' dawned Friday with the launch of an international satellite carrying the agency-built Aquarius instrument that will measure the saltiness of Earth's oceans to advance our understanding of the global water cycle and improve climate forecasts.

The Aquarius/SAC-D observatory rocketed into space from Vandenberg Air Force Base in California atop a United Launch Alliance Delta II rocket at 7:20:13 a.m. PDT. Less than 57 minutes later, the observatory separated from the rocket's second stage and began activation procedures, establishing communications with ground controllers and unfurling its solar arrays.

Initial telemetry reports show the observatory is in excellent health. The SAC-D (Satélite de Aplicaciones Científicas) observatory is a collaboration between NASA and Argentina's space agency, Comisión Nacional de Actividades Espaciales (CONAE).

"Aquarius is a critical component of our Earth sciences work, and part of the next generation of space-based instruments that will take our knowledge of our home planet to new heights," said NASA Deputy Administrator Lori Garver. "The innovative scientists and engineers who contributed to this mission are part of the talented team that will help America win the future and make a positive impact across the globe."

Aquarius will make NASA's first space observations of the salinity or concentration of salt at the ocean surface, a key missing variable in satellite studies of Earth. Variations in salinity influence deep ocean circulation, trace the path of freshwater around our planet and help drive Earth's climate.

"Data from this mission will advance our understanding of the ocean and prediction of the global water cycle," said Michael Freilich, director of NASA's Earth Science Division in the Science Mission Directorate at agency headquarters in Washington. "This mission demonstrates the power of international collaboration and accurate spaceborne measurements for science and societal benefit. This would not be possible without the sustained cooperation of NASA, CONAE and our other partners."

In addition to Aquarius, the observatory carries seven instruments that will monitor natural hazards and collect a broad range of environmental data. Other mission partners include Brazil, Canada, France and Italy.

"This mission is the most outstanding project in the history of scientific and technological cooperation between Argentina and the United States," said CONAE Executive and Technical Director Conrado Varotto. "Information from the mission will have significant benefits for humankind."

Aquarius will map the global open ocean once every seven days for at least three years with a resolution of 93 miles (150 kilometers). The maps will show how ocean surface salinity changes each month, season and year. Scientists expect to release preliminary salinity maps later this year.

Aquarius will measure salinity by sensing thermal microwave emissions from the water's surface with three microwave instruments called radiometers. When other environmental factors are equal, these emissions indicate the saltiness of surface water. A microwave radar scatterometer instrument will measure ocean waves that affect the precision of the salinity measurement. Because salinity levels in the open ocean vary by only about five parts per thousand, Aquarius will be able to detect changes as small as approximately two parts per 10,000, equivalent to about one-eighth of a teaspoon of salt in a gallon of water.

During the next 25 days, the Aquarius/SAC-D service platform will be tested and maneuvered into its final operational, near-polar orbit 408 miles (657 kilometers) above Earth. Science operations will begin after the observatory's instruments are checked out. This commissioning phase may last up to 65 days.

Aquarius was built by NASA's Jet Propulsion Laboratory in Pasadena, Calif., and the Goddard Space Flight Center in Greenbelt, Md. NASA's Launch Services Program, at Kennedy Space Center in Florida, managed the launch. JPL will manage Aquarius through its commissioning phase and archive mission data. Goddard will manage Aquarius mission operations and process science data. CONAE is providing the SAC-D spacecraft, optical camera, thermal camera with Canada, microwave radiometer, sensors from various Argentine institutions and the mission operations center. France and Italy also are contributing instruments. For more information about Aquarius/SAC-D, visit http://www.nasa.gov/aquarius and http://www.conae.gov.ar/eng/principal.html.

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Thursday, May 26, 2011

NASA'S Hubble Finds Rare 'Blue Straggler' Stars In Milky Way's Hub

Trent J. Perrotto
Headquarters, Washington                                    
 
Ray Villard/Kailash Sahu
Space Telescope Science Institute, Baltimore
 
WASHINGTON -- NASA's Hubble Space Telescope has found a rare class of oddball stars called blue stragglers in the hub of our Milky Way, the first detected within our galaxy's bulge.

Blue stragglers are so named because they seemingly lag behind in the aging process, appearing younger than the population from which they formed. While they have been detected in many distant star clusters, and among nearby stars, they never have been seen inside the core of our galaxy.

It is not clear how blue stragglers form. A common theory is that they emerge from binary pairs. As the more massive star evolves and expands, the smaller star gains material from its companion. This stirs up hydrogen fuel and causes the growing star to undergo nuclear fusion at a faster rate. It burns hotter and bluer, like a massive young star.

The findings support the idea that the Milky Way's central bulge stopped making stars billions of years ago. It now is home to aging sun-like stars and cooler red dwarfs. Giant blue stars that once lived there have long since exploded as supernovae. The results have been accepted for publication in an upcoming issue of The Astrophysical Journal. Lead author Will Clarkson of Indiana University in Bloomington, will discuss them today at the American Astronomical Society meeting in Boston.

"Although the Milky Way bulge is by far the closest galaxy bulge, several key aspects of its formation and subsequent evolution remain poorly understood," Clarkson said. "Many details of its star-formation history remain controversial. The extent of the blue straggler population detected provides two new constraints for models of the star-formation history of the bulge."

The discovery followed a seven-day survey in 2006 called the Sagittarius Window Eclipsing Extrasolar Planet Search (SWEEPS). Hubble peered at 180,000 stars in the crowded central bulge of our galaxy, 26,000 light-years away. The survey was intended to find hot Jupiter-class planets that orbit very close to their stars. In doing so, the SWEEPS team also uncovered 42 oddball blue stars with brightness and temperatures typical for stars much younger than ordinary bulge stars.

The observations clearly indicate that if there is a young star population in the bulge, it is very small. It was not detected in the SWEEPS program. Blue stragglers long have been suspected to be living in the bulge, but had not been observed because younger stars in the disk of our galaxy lie along the line-of-sight to the core, confusing and contaminating the view.

Astronomers used Hubble to distinguish the motion of the core population from foreground stars in the Milky Way. Bulge stars orbit the galactic center at a different speed than foreground stars. Plotting their motion required returning to the SWEEPS target region with Hubble two years after the first observations were made. The blue stragglers were identified as moving along with the other stars in the bulge.
"The size of the field of view on the sky is roughly that of the thickness of a human fingernail held at arm's length, and within this region, Hubble sees about a quarter million stars toward the bulge," Clarkson said. "Only the superb image quality and stability of Hubble allowed us to make this measurement in such a crowded field."

From the 42 candidate blue stragglers, the investigators estimate 18 to 37 are likely genuine. The remainder could be a mix of foreground objects and, at most, a small population of genuinely young bulge stars.

"The SWEEPS program was designed to detect transiting planets through small light variations" said Kailash Sahu, the principal investigator of the SWEEPS program. "Therefore the program could easily detect the variability of binary pairs, which was crucial in confirming these are indeed blue stragglers."

Hubble is a project of international cooperation between NASA and the European Space Agency. NASA's Goddard Space Flight Center in Greenbelt, Md., manages the telescope. The Space Telescope Science Institute (STScI) conducts Hubble science operations. STScI is operated for NASA by the Association of Universities for Research in Astronomy in Washington. For images and more information about the findings, visit http://www.nasa.gov/hubble and http://hubblesite.org/news/2011/16.

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Tuesday, May 17, 2011

Tornado Challenges Satellite Damage Track Detection Techniques

The Short-term Prediction Research and Transition, or SPoRT, team has used satellite data from the North Alabama region to identify tornado damage from the April 27th super storm outbreak.

NASA's Terra satellite, part of the Earth Observing System of satellites, captured images of the damage path. An instrument aboard Terra called the Advanced Spaceborne Thermal Emission and Reflection Radiometer, or ASTER, was used to discern vegetation contrasts over the region.

"This is the first time ASTER data has been applied to such a massive outbreak of storms," said Gary Jedlovec, atmospheric scientist at Marshall Space Flight Center. "The usefulness of satellite information in providing improved accuracy along with damage assessment in severe weather events continues to evolve."

The tornado track signature observed by ASTER is seen as a disruption in the vegetation or other reflective surfaces over a region caused by tornado winds. Uprooted trees quickly stop the process of photosynthesis and change color -- this is easily detected by satellite.

However, detecting damage in areas outside of heavy forestland is challenging.

In Madison and Limestone counties much of the area scarred by the tornadoes are agricultural in nature. Fields are either pasture land or row crops -- therefore the effect of tornado winds is minimal and the mark on satellite imagery is suppressed.

While this indicates a limitation to the use of this particular image analysis for tornado track detection over primarily agricultural land use, the SPoRT team is exploring the use of temperature channels from ASTER to better identify damage marks on Earth's surface. Terra/ASTER is a joint activity between NASA's Science Mission Directorate Earth Science Division and Japan's Ministry of Economy, Trade and Industry. Terra is one of 14 NASA satellites that look at the Earth to study and understand changes in the Earth system and provide societal benefits.

The NASA image created by the Short-term Prediction and Research Transition or SPoRT project at the Marshall Space Flight Center in Huntsville, using data provided courtesy of NASA Goddard Space Flight Center, the Land Processes Distributed Active Archive Center, Japan’s Earth Remote Sensing Data Analysis Center, the Ministry of Economy, Trade and Industry, along with the Japan Research Observation System Organization.
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Thursday, May 5, 2011

NASA Selects Investigations For Future Key Planetary Mission

Dwayne C. Brown
Headquarters, Washington

WASHINGTON -- NASA has selected three science investigations from which it will pick one potential 2016 mission to look at Mars' interior for the first time; study an extraterrestrial sea on one of Saturn's moons; or study in unprecedented detail the surface of a comet's nucleus.

Each investigation team will receive $3 million to conduct its mission's concept phase or preliminary design studies and analyses. After another detailed review in 2012 of the concept studies, NASA will select one to continue development efforts leading up to launch. The selected mission will be cost-capped at $425 million, not including launch vehicle funding.

NASA's Discovery Program requested proposals for spaceflight investigations in June 2010. A panel of NASA and other scientists and engineers reviewed 28 submissions. The selected investigations could reveal much about the formation of our solar system and its dynamic processes. Three technology developments for possible future planetary missions also were selected.

"NASA continues to do extraordinary science that is re-writing textbooks," said NASA Administrator Charles Bolden. "Missions like these hold great promise to vastly increase our knowledge, extend our reach into the solar system and inspire future generations of explorers."

The planetary missions selected to pursue preliminary design studies are:

-- Geophysical Monitoring Station (GEMS) would study the structure and composition of the interior of Mars and advance understanding of the formation and evolution of terrestrial planets. Bruce Banerdt of NASA's Jet Propulsion Laboratory (JPL) in Pasadena, Calif., is principal investigator. JPL would manage the project.
-- Titan Mare Explorer (TiME) would provide the first direct exploration of an ocean environment beyond Earth by landing in, and floating on, a large methane-ethane sea on Saturn's moon Titan. Ellen Stofan of Proxemy Research Inc. in Gaithersburg, Md., is principal investigator. Johns Hopkins University's Applied Physics Laboratory in Laurel, Md., would manage the project.
-- Comet Hopper would study cometary evolution by landing on a comet multiple times and observing its changes as it interacts with the sun. Jessica Sunshine of the University of Maryland in College Park is principal investigator. NASA's Goddard Space Flight Center in Greenbelt, Md., would manage the project.

"This is high science return at a price that’s right," said Jim Green, director of NASA’s Planetary Science Division in Washington. "The selected studies clearly demonstrate a new era with missions that all touch their targets to perform unique and exciting science."

The three selected technology development proposals will expand the ability to catalog near-Earth objects, or NEOs; enhance the capability to determine the composition of comet ices; and validate a new method to reveal the population of objects in the poorly understood, far-distant part of our solar system. During the next several years, selected teams will receive funding that is determined through contract negotiations to bring their respective technologies to a higher level of readiness. To be considered for flight, teams must demonstrate progress in a future mission proposal competition.

The proposals selected for technology development are:
-- Primitive Material Explorer (PriME) would develop a mass spectrometer that would provide highly precise measurements of the chemical composition of a comet and explore the objects' role in delivering volatiles to Earth. Anita Cochran of the University of Texas in Austin is principal investigator.
-- Whipple: Reaching into the Outer Solar System would develop and validate a technique called blind occultation that could lead to the discovery of various celestial objects in the outer solar system and revolutionize our understanding of the area's structure. Charles Alcock of the Smithsonian Astrophysical Observatory in Cambridge, Mass., is principal investigator.
-- NEOCam would develop a telescope to study the origin and evolution of NEOs and study the present risk of Earth-impact. It would generate a catalog of objects and accurate infrared measurements to provide a better understanding of small bodies that cross our planet's orbit. Amy Mainzer of JPL is principal investigator.

Created in 1992, the Discovery Program sponsors frequent, cost-capped solar system exploration missions with highly focused scientific goals. The program's 11 missions include MESSENGER, Dawn, Stardust, Deep Impact and Genesis. NASA's Marshall Space Flight Center in Huntsville, Ala., manages the program for the agency's Science Mission Directorate.

For more information about the Discovery Program, visit http://discovery.nasa.gov.

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Thursday, April 28, 2011

NASA's Swift And Hubble Probe Asteroid Collision Debris

Trent J. Perrotto
Headquarters, Washington
 
Lynn Chandler
Goddard Space Flight Center, Greenbelt, Md.
 
WASHINGTON -- Late last year, astronomers noticed an asteroid named Scheila had unexpectedly brightened, and it was sporting short-lived plumes. Data from NASA's Swift satellite and Hubble Space Telescope showed these changes likely occurred after Scheila was struck by a much smaller asteroid.

"Collisions between asteroids create rock fragments, from fine dust to huge boulders, that impact planets and their moons," said Dennis Bodewits, an astronomer at the University of Maryland in College Park and lead author of the Swift study. "Yet this is the first time we've been able to catch one just weeks after the smash-up, long before the evidence fades away."

Asteroids are rocky fragments thought to be debris from the formation and evolution of the solar system approximately 4.6 billion years ago. Millions of them orbit the sun between Mars and Jupiter in the main asteroid belt. Scheila is approximately 70 miles across and orbits the sun every five years.

"The Hubble data are most simply explained by the impact, at 11,000 mph, of a previously unknown asteroid about 100 feet in diameter," said Hubble team leader David Jewitt at the University of California in Los Angeles. Hubble did not see any discrete collision fragments, unlike its 2009 observations of P/2010 A2, the first identified asteroid collision.

The studies will appear in the May 20 edition of The Astrophysical Journal Letters and are available online.

Astronomers have known for decades that comets contain icy material that erupts when warmed by the sun. They regarded asteroids as inactive rocks whose destinies, surfaces, shapes and sizes were determined by mutual impacts. However, this simple picture has grown more complex over the past few years.

During certain parts of their orbits, some objects, once categorized as asteroids, clearly develop comet-like features that can last for many months. Others display much shorter outbursts. Icy materials may be exposed occasionally, either by internal geological processes or by an external one, such as an impact.

On Dec. 11, 2010, images from the University of Arizona's Catalina Sky Survey, a project of NASA's Near Earth Object Observations Program, revealed Scheila to be twice as bright as expected and immersed in a faint comet-like glow. Looking through the survey's archived images, astronomers inferred the outburst began between Nov. 11 and Dec. 3.

Three days after the outburst was announced, Swift's Ultraviolet/Optical Telescope (UVOT) captured multiple images and a spectrum of the asteroid. Ultraviolet sunlight breaks up the gas molecules surrounding comets; water, for example, is transformed into hydroxyl and hydrogen. But none of the emissions most commonly identified in comets, such as hydroxyl or cyanogen, show up in the UVOT spectrum. The absence of gas around Scheila led the Swift team to reject scenarios where exposed ice accounted for the activity.

Images show the asteroid was flanked in the north by a bright dust plume and in the south by a fainter one. The dual plumes formed as small dust particles excavated by the impact were pushed away from the asteroid by sunlight. Hubble observed the asteroid's fading dust cloud on Dec. 27, 2010, and Jan. 4, 2011.

The two teams found the observations were best explained by a collision with a small asteroid impacting Scheila's surface at an angle of less than 30 degrees, leaving a crater 1,000 feet across. Laboratory experiments show a more direct strike probably wouldn't have produced two distinct dust plumes. The researchers estimated the crash ejected more than 660,000 tons of dust -- equivalent to nearly twice the mass of the Empire State Building.

"The dust cloud around Scheila could be 10,000 times as massive as the one ejected from comet 9P/Tempel 1 during NASA's UMD-led Deep Impact mission," said co-author Michael Kelley, also at the University of Maryland. "Collisions allow us to peek inside comets and asteroids. Ejecta kicked up by Deep Impact contained lots of ice, and the absence of ice in Scheila's interior shows that it's entirely unlike comets."

NASA's Goddard Space Flight Center in Greenbelt, Md., manages Hubble and Swift. Hubble was built and is operated in partnership with the European Space Agency. Science operations for both missions include contributions from many national and international partners. For more information, video and images associated with this release, visit http://www.nasa.gov/topics/universe/features/asteroid-collision.html.

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