JAN. 10 NASA MEDIA BRIEFING ON NEXT LANDSAT MISSION

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    NASA RELEASE: FERMI IMPROVES ITS VISION FOR THUNDERSTORM GAMMA-RAY FLASHES


    WASHINGTON — Thanks to improved data analysis techniques and a new operating mode, the Gamma-ray Burst Monitor (GBM) aboard NASA’s Fermi Gamma-ray Space Telescope is now 10 times better at catching the brief outbursts of high-energy light mysteriously produced above thunderstorms.

    The outbursts, known as terrestrial gamma-ray flashes (TGFs), last only a few thousandths of a second, but their gamma rays rank among the highest-energy light that naturally occurs on Earth. The enhanced GBM discovery rate helped scientists show most TGFs also generate a strong burst of radio waves, a finding that will change how
    scientists study this poorly understood phenomenon.

    Before being upgraded, the GBM could capture only TGFs that were bright enough to trigger the instrument’s on-board system, which meant many weaker events were missed.

    “In mid-2010, we began testing a mode where the GBM directly downloads full-resolution gamma-ray data even when there is no on-board trigger, and this allowed us to locate many faint TGFs we had been missing,” said lead researcher Valerie Connaughton, a member of the GBM team at the University of Alabama in Huntsville (UAH). She presented the findings Wednesday in an invited talk at the American Geophysical Union meeting in San Francisco. A paper detailing the results is accepted for publication in the Journal of Geophysical Research: Space Physics.

    The results were so spectacular that on Nov. 26 the team uploaded new flight software to operate the GBM in this mode continuously, rather than in selected parts of Fermi’s orbit.

    Connaughton’s team gathered GBM data for 601 TGFs from August 2008 to August 2011, with most of the events, 409 in all, discovered through the new techniques. The scientists then compared the gamma-ray data to radio emissions over the same period.

    Lightning emits a broad range of very low frequency (VLF) radio waves, often heard as pop-and-crackle static when listening to AM radio. The World Wide Lightning Location Network (WWLLN), a research collaboration operated by the University of Washington in Seattle, routinely detects these radio signals and uses them to pinpoint the
    location of lightning discharges anywhere on the globe to within about 12 miles (20 km).

    Scientists have known for a long time TGFs were linked to strong VLF bursts, but they interpreted these signals as originating from lightning strokes somehow associated with the gamma-ray emission.

    “Instead, we’ve found when a strong radio burst occurs almost simultaneously with a TGF, the radio emission is coming from the TGF itself,” said co-author Michael Briggs, a member of the GBM team.

    The researchers identified much weaker radio bursts that occur up to several thousandths of a second before or after a TGF. They interpret these signals as intracloud lightning strokes related to, but not created by, the gamma-ray flash.

    Scientists suspect TGFs arise from the strong electric fields near the tops of thunderstorms. Under certain conditions, the field becomes strong enough that it drives a high-speed upward avalanche of electrons, which give off gamma rays when they are deflected by air molecules.

    “What’s new here is that the same electron avalanche likely responsible for the gamma-ray emission also produces the VLF radio bursts, and this gives us a new window into understanding this phenomenon,” said Joseph Dwyer, a physics professor at the Florida Institute of Technology in Melbourne, Fla., and a member of the study team.

    Because the WWLLN radio positions are far more precise than those based on Fermi’s orbit, scientists will develop a much clearer picture of where TGFs occur and perhaps which types of thunderstorms tend to produce them.

    The GBM scientists predict the new operating mode and analysis techniques will allow them to catch about 850 TGFs each year. While this is a great improvement, it remains a small fraction of the roughly 1,100 TGFs that fire up each day somewhere on Earth, according to the team’s latest estimates.

    Likewise, TGFs detectable by the GBM represent just a small fraction of intracloud lightning, with about 2,000 cloud-to-cloud lightning strokes for every TGF.

    The Fermi Gamma-ray Space Telescope is an astrophysics and particle physics partnership and is managed by NASA’s Goddard Space Flight Center in Greenbelt, Md. Fermi was developed in collaboration with
    the U.S. Department of Energy, with important contributions from academic institutions and partners in France, Germany, Italy, Japan, Sweden and the United States.

    The GBM Instrument Operations Center is located at the National Space Science Technology Center in Huntsville, Ala. The GBM team includes a collaboration of scientists from UAH, NASA’s Marshall Space Flight Center in Huntsville, the Max Planck Institute for Extraterrestrial Physics in Germany and other institutions.

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    NASA TV TO BROADCAST JAPANESE CARGO CRAFT FLIGHT TO SPACE STATION

    HOUSTON — NASA plans live television coverage of the launch, grapple and berthing of the second unpiloted Japanese cargo ship that will deliver more than four tons of food and supplies to the International Space Station.

    The Japan Aerospace Exploration Agency (JAXA) is scheduled to launch an H-IIB rocket from the Tanegashima Space Center in southern Japan at 12:29 a.m. CST (3:29 p.m. Japan time) on Thursday, Jan. 20. The launch vehicle will send the Kounotori2 H-II Transfer Vehicle (HTV2) orbit on a week-long rendezvous with the station. “Kounotori” is the Japanese word for white stork, emblematic of delivering happiness and joy.

    On Jan. 27, Expedition 26 Flight Engineers Cady Coleman and Paolo Nespoli will command the station’s robotic arm, Canadarm2, to reach out, grapple Kounotori2, and attach it to the Earth-facing port of the Harmony module.

    In the following days, a pallet loaded with spare station parts will be extracted from a slot in the cargo ship and attached to an experiment platform outside the Japanese Kibo module. Other cargo will be transferred internally to the station.

    The cargo vehicle will be filled with trash, detached from the station and sent to burn up in the Earth’s atmosphere at the end of March.

    NASA Television’s programming schedule for HTV2 events includes (all times CST):

    Thursday, Jan. 20:

    12 a.m. — Launch coverage, anchored from NASA’s Johnson Space Center in Houston, begins. Launch is scheduled at 12:29 a.m. Thursday, Jan. 27:

    5 a.m. — Grapple coverage, anchored from Johnson, begins. The grapple of HTV2 is scheduled at 5:44 a.m.

    8 a.m. — Berthing coverage, anchored from Johnson, begins. The attachment should be complete at approximately 10 a.m.

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    NASA ADMINISTRATOR CHARLES BOLDEN ISSUES STATEMENT ON THE DEATH OF FORMER SENATOR TED STEVENS AND MONDAY’S PLANE CRASH IN ALASKA

    WASHINGTON — NASA Administrator Charles Bolden issued the following
    statement Tuesday about the plane crash in Alaska that killed former
    U.S. Sen. Ted Stevens and injured former NASA Administrator Sean
    O’Keefe and his son, Kevin:

    “We at NASA are deeply saddened by today’s news that former U.S. Sen.
    Ted Stevens and others were killed in a plane crash in Alaska that
    also injured former NASA Administrator Sean O’Keefe and his son,
    Kevin. As a long-time supporter of NASA, Sen. Stevens made lasting
    contributions to our agency and our country. We at NASA mourn his
    loss and send our deepest condolences to his family, as well as the
    families and friends of all who perished in the accident. We also
    send our best wishes for a speedy recovery to Sean, Kevin, and other
    survivors of the crash. Our thoughts and prayers are with them and
    their families.”

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    NASA TO HOLD GREEN AVIATION SUMMIT SEPT. 8-9; BOLDEN TO HIGHLIGHT IMPORTANCE OF ISSUE TO FUTURE OF NASA

    MOFFETT FIELD, Calif. — NASA will host a Green Aviation Summit Sept.
    8-9 to highlight the agency’s work to develop environmentally
    responsible aviation technologies.

    The two-day meeting at NASA’s Ames Research Center in Moffett Field,
    Calif., will bring together experts from NASA, other federal
    government organizations, industry and academia. They will discuss
    groundbreaking solutions that NASA and its research partners are
    developing to reduce aircraft noise, emissions and fuel consumption,
    and to ensure the safe and manageable growth of the aviation system.

    The Green Aviation Summit will feature keynote presentations by
    leading policymakers as well as detailed technical presentations and
    panel discussions on the current state-of-the-art and emerging
    technologies. NASA Administrator Charles Bolden will address the
    participants on Sept. 8.

    Seating is limited. Journalists interested in attending the summit
    must register online by Aug. 31. Portions of the event will be
    broadcast live on NASA Television’s Education Channel.

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    Helicopter News

    Just crossing the transom now, there were alerts today of a number of helicopter events:

    • The fleet of North Sea Super Pumas were reinstated after the Sumburgh crash that killed 4 oil workers:
      but the L2 version of the helicopter – the Super Puma model involved in Friday’s crash – will only be allowed to fly on the what has been described as “non passenger revenue operations”

    • 1 hurt in helicopter crash in Tonto National Forest when a helicopter leased by APS made a hard landing with six people aboard

    See Video below

    • Helicopter crashes for science at NASA Langley

    See Video below

    • The Canadian NTSB indicated that the Robinson Helicopter R44 II in July 2012 in Carcross, Yukon occurred because of the pilot’s failure to check winds affecting the landing area. On July 10, 2012, an R44 II operated by Horizon Helicopters Ltd. transported 2 Yukon Government surveyors to bear-bait sites in the Carcross area. The helicopter departed Carcross at 3 p.m. followed the north shore of Tagish Lake and approached the wildlife survey site from the west. At approximately 3:13 p.m., the Joint Rescue Coordination Centre received an emergency locator transmitter signal from the aircraft. The wreckage was found approximately 5 nautical miles east of Carcross on Nares Mountain. The pilot was fatally injured, one passenger was seriously injured, and another received minor injuries.
  • On Oahu, a civilian pilot and a passenger crashed in a pineapple field a mile south of Wheeler Army Airfield. Both were hospitalized. The privately owned AC 8KCAB Decathlon experienced a loss of power. The accident was originally listed as occurring in a helicopter, but it is a single engine fixed wing plane registered to J3 ENGINEERING.
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    NASA Data and New Techniques Yield Detailed Views of Solar Storms

    WASHINGTON — NASA spacecraft observations and new data processing techniques are giving scientists better insight into the evolution and development of solar storms that can damage satellites, disrupt communications and cause power grid failures on Earth.

    The solar storms, called Coronal Mass Ejections (CMEs), are being observed from NASA’s twin Solar Terrestrial Relations Observatory, or STEREO, spacecraft launched in 2006. The duo represents a key component within a fleet of NASA spacecraft that enhance the capability to predict solar storms.

    Previous spacecraft imagery did not clearly show the structure of a solar disturbance as it traveled toward Earth. As a result, forecasters had to estimate when storms would arrive without knowing the details of how they evolve and grow. New processing techniques used on STEREO data allow scientists to see how solar eruptions develop into space storms at the Earth.

    “The clarity these new images provide will improve the observational inputs into space weather models for better forecasting,” said Lika Guhathakurta, STEREO program scientist at NASA Headquarters in Washington.

    CMEs are billion-ton clouds of solar plasma launched by the same sun explosions that spark solar flares. When they sweep past Earth, they can cause auroras, radiation storms that can disrupt sensitive electronics on satellites, and in extreme cases, power outages. Better tracking of these clouds and the ability to predict their arrival is an important part of space weather forecasting.

    Newly released images from cameras on the STEREO-A spacecraft reveal detailed features in a large Earth-directed CME in late 2008, connecting the original magnetized structure in the sun’s corona to the intricate anatomy of the interplanetary storm as it hit the planet three days later. When the data were collected, the spacecraft was more than 65 million miles away from Earth.

    The spacecraft’s wide-angle cameras captured the images. They detect ordinary sunlight scattered by free-floating electrons in plasma clouds. When these clouds in CMEs leave the sun, they are bright and easy to see. However, visibility is quickly reduced, as the clouds expand into the void. The clouds are about one thousand times fainter than the Milky Way, which makes direct imaging of them difficult. That also has limited our understanding of the connection between solar storms and the coronal structures that cause them.

    “Separating these faint signals from the star field behind them proved especially challenging, but it paid off,” said Craig DeForest, scientist at the Southwest Research Institute in Boulder, Colo. and lead author of an Astrophysical Journal article released online yesterday. “We have been drawing pictures of structures like these for several decades. Now that we can see them so far from the sun, we find there is still a lot to learn.”

    These observations can pinpoint not only the arrival time of the CME, but also its mass. The brightness of the cloud enabled researchers to calculate the cloud’s gas density throughout the structure, and compare it to direct measurements by other NASA spacecraft. When this technique is applied to future storms, forecasters will be able to say with confidence whether Earth is about to be hit by a small or large cloud, and where on the sun the material originated.

    STEREO’s two observatories orbit the sun, one ahead of Earth and one behind. They will continue to move apart over time. STEREO is the third mission in NASA’s Solar Terrestrial Probes program. The program seeks to understand the fundamental physical processes of the space environment from the sun to Earth and other planets.

    The STEREO spacecraft were built and are operated for NASA by the Johns Hopkins University Applied Physics Laboratory in Laurel, Md. NASA’s Goddard Space Flight Center in Greenbelt, Md., manages the mission, instruments and science center. The STEREO instruments were designed and built by scientific institutions in the U.S., UK, France, Germany, Belgium, Netherlands, and Switzerland.

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