Aviation Safety Net gives us 2009 in a nutshell

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    Airbus Press Release: Airbus opens new supplier village extension in Beijing

    The Hua-Ou Aviation Support Centre in Beijing, a joint venture between Airbus and China Aviation Supplies Holding Company (CAS), has opened a new extension at its supplier village to provide enhanced and more efficient support for operators of Airbus aircraft in China – including information and communications technology (ICT) and other logistics support.

    The extension provides 500 square metres of additional office space, along with a new workshop area and office for the ICT team – which can offer bilingual 24-hour support to suppliers. An inauguration ceremony marking its formal opening was held today, which was followed by a Supplier Village Business Forum.

    “As a part of the Airbus global support network, the Hua-Ou Aviation Support Centre has played an important role in supporting the operators of Airbus aircraft in China,” said Laurence Barron, President of Airbus China and Vice Chairman of the Hua-Ou Aviation Support Centre Board. “We appreciate the strong support from the suppliers and we are sure that by working together more closely with them, we will offer more efficient support to operators.”

    Over the past decade, the in-service fleet of Airbus aircraft in mainland China has grown on average by more than 20 per cent annually. To date, more than 620 Airbus aircraft are operated in China, with continued growth projected during the coming years.

    “The new extension, which is funded by the Hua-Ou joint venture itself, is a demonstration of the success story of the joint venture and the cooperation between Airbus and CAS,” said Li Hai, President of the China Aviation Supplies Holding Company, and Chairman of the Hua-Ou Board. “CAS will continue to provide strong support to the further development of the centre, which will contribute more to the development of China’s aviation industry.”

    The Hua-Ou Aviation Support Centre, which is China’s first maintenance training facility, offers door-to-door delivery services to several Chinese airlines. A total of 44 companies from Europe and the United States have committed to establishing a presence at the centre.

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    Goodrich and Air Arabia Sign Nacelle Services Agreement for Support of Airbus A320 Fleet

    Work will be performed through Prime Solutions® at the Goodrich Dubai campus

    CHARLOTTE, N.C., Dec. 13, 2010 Goodrich Corporation has signed a nacelle services agreement with Air Arabia for support of nacelles and thrust reversers in the airline’s fleet of more than 50 Airbus A320 aircraft powered by CFM56-5B engines. The 10-year Prime Solutions® nacelle services agreement will be managed through Goodrich’s Dubai campus in Jebel Ali, United Arab Emirates, which will provide local support to the fast-growing low-cost carrier based in Sharjah, UAE.

    Bob Gustafson, vice president and general manager of Aftermarket Services at Goodrich’s Aerostructures business said, “This agreement is a good example of an airline recognizing the value of securing long-term nacelle services with a locally positioned nacelle maintenance, repair and overhaul facility,” he said. “As more airlines recognize the time and cost savings realizable by having repairs performed on large components close to their main operating bases, our Dubai service center will see continued growth in the region.”

    Prime Solutions is a comprehensive suite of maintenance services and asset/inventory management programs that can be fully customized to meet any airline’s needs for nacelle maintenance. Goodrich Aerostructures operates eight service centers worldwide.

    Air Arabia (PJSC), listed on the Dubai Financial Market, is the Middle East and North Africa’s first and largest low-cost carrier. Air Arabia began operations in October 2003 and operates a fleet of new Airbus A320 aircraft, serving a wide range of destinations across the Middle East, North Africa, Europe, and South and Central Asia. Air Arabia operates from its hubs in Sharjah, UAE; Casablanca, Morocco; and Alexandria, Egypt.

    Goodrich Corporation, a Fortune 500 company, is a global supplier of systems and services to aerospace, defense and homeland security markets. With one of the most strategically diversified portfolios of products in the industry, Goodrich serves a global customer base with significant worldwide manufacturing and service facilities.

    Goodrich Corporation operates through its divisions and as a parent company for its subsidiaries, one or more of which may be referred to as “Goodrich Corporation” in this press release.

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  • NCAR Press Release: New NCAR System May Guide Transoceanic Flights Around Storms and Turbulence

    July 07, 2009

    BOULDER—The National Center for Atmospheric Research is developing a prototype system to provide aircraft with updates about severe storms and turbulence as they fly across remote ocean regions. The system is designed to help guide pilots away from intense weather, such as the thunderstorms that Air France Flight 447 apparently encountered before crashing into the Atlantic Ocean on June 1.

    The NCAR system, being developed with funding from NASA, combines satellite data and computer weather models with cutting-edge artificial intelligence techniques to identify and predict rapidly evolving storms and other potential areas of turbulence. The system is based on products that NCAR has developed to alert pilots and air traffic controllers about storms and turbulence over the continental United States.

    “Pilots currently have little weather information as they fly over remote stretches of the ocean, which is where some of the worst turbulence encounters occur,” says NCAR scientist John Williams, one of the project leads. “Providing pilots with at least an approximate picture of developing storms could help guide them safely around areas of potentially severe turbulence.”

    The component of the system that identifies major storms over the ocean is already available for aircraft use on an experimental basis.

    The entire prototype system, which will identify areas of turbulence in clear air as well as within storms, is on track for testing next year. Pilots on selected transoceanic routes will receive real-time turbulence updates and then provide feedback on the system to NCAR. The researchers will adjust the system as needed.

    When the system is finalized in about two years, it will provide pilots and ground-based controllers with text-based maps and graphical displays showing likely regions of turbulence and of storms.

    In addition to NCAR, other organizations taking part in the research include the Massachusetts Institute of Technology’s Lincoln Laboratory, the Naval Research Laboratory, and the University of Wisconsin-Madison.

    Flying with little information

    Pinpointing turbulence over the oceans is far more challenging than over land because of sparse observations. Weather satellites are often the only source of information over these remote regions. But the satellites provide images less frequently in general than over land, which can make it difficult to capture fast-changing conditions, and they do not directly measure turbulence.

    Pilots of transoceanic flights currently get preflight briefings and, in certain cases involving especially intense storms, in-flight weather updates every four hours. They also have onboard radar.

    All this information, however, is of limited value. Thunderstorms may develop quickly and move rapidly, rendering the briefings and weather updates obsolete. Onboard radars are designed to detect clouds and precipitation, but turbulence is often located far from the most intense precipitation. As a result, pilots often must choose between detouring hundreds of miles around potentially stormy areas or taking a chance and flying directly through a region that may or may not contain intense weather.

    In contrast, NCAR provides real-time maps of turbulence at various altitudes over the continental United States. Such a system, had it encompassed remote ocean regions, could have alerted the pilots of the doomed Air France flight to the stormy conditions along their flight path. The cause of that disaster has not been determined, and it is impossible to know whether the system could have prevented it.

    “It seems likely that the information provided by a real-time uplink of weather conditions ahead would have, at a minimum, improved the pilots’ situational awareness,” Williams says.

    Pinpointing the turbulence

    Williams and his colleagues have recently completed two critical steps in identifying turbulence over the oceans:

    The team has created global maps of clear air turbulence based on global computer weather models that include winds and other instabilities in the atmosphere. Clear air turbulence consists of erratic movements of air masses that occur in the absence of clouds and that sometimes buffet aircraft.

    Drawing on satellite images of storms, the scientists have created global views of the tops of storm clouds. Higher cloud tops are often correlated with intense storms, although not necessarily with turbulence.

    The next step is to identify areas of possible turbulence within and around intense storms. To do so, the team will study correlations between storms and turbulence over the continental United States where weather is more closely observed. The scientists will then infer the likelihood of turbulence associated with storms over the oceans, keying in on satellite indicators such as rapidly expanding clouds or places where the tops of storm clouds are cooling quickly.

    They will also develop mathematical equations to account for differences in cloud systems over the United States compared to over the oceans, including the tropics.

    Artificial intelligence at work

    In addition to providing aircraft and ground controllers with up-to-the-minute maps of turbulence, the NCAR team is turning to an artificial intelligence technique, known as “random forests,” to provide short-term forecasts of turbulence. The random forests, which have proven useful for forecasting thunderstorms over land, consist of many decision trees that each cast a yes-or-no “vote” on crucial elements of a storm at future points in time and space. This enables scientists to forecast the movement and strength of the storm over the next few hours.

    “Our goal is to give pilots a regularly updated picture of the likely storms ahead as they fly over the ocean so they can take action to minimize turbulence and keep their aircraft out of danger,” explains NCAR scientist Cathy Kessinger, a project team member. “Even over the middle of the ocean, where we don’t have land-based radars or other tools to observe storms in detail, we can still inform pilots about the potential for violent downdrafts, turbulence, and possibly lightning.”

    source:
    http://www.ucar.edu/news/releases/2009/ocean-air-turbulence.jsp#
    ©2009, UCAR

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    Boeing Receives US Air Force Contract for C-17 Training Devices

    ST. LOUIS, Dec. 22, 2010 — The Boeing Company today announced it has received a contract from the U.S. Air Force to deliver C-17 training devices to three sites. The contract value is $44 million initially and up to $72 million if two options are exercised.

    The first set of devices is an Integrated Training Center (ITC) to be delivered to Wright-Patterson Air Force Base, Ohio, in the first quarter of 2012. The ITC will consist of a weapon systems trainer, pilot and co-pilot station, loadmaster station and related courseware and support equipment. A second weapon systems trainer will be installed at McChord Air Force Base, Wash., in the third quarter of 2012 and a third ITC will go to a new C-17 training site in early 2013.

    “Wright-Patterson is set to receive its first of eight C-17s next year and McChord has 54,” said Mark McGraw, Boeing vice president for Training Systems & Services. “We are proud to add to the Air Force’s training capability and support warfighter readiness with these new devices.”

    The ITCs support pilot and co-pilot instruction in flight operations, mission planning and emergency procedures through computer-based training, advanced aircraft simulation and other desktop training devices. C-17 loadmasters also receive computer-based and aircraft training in addition to training on the loadmaster station, cargo loading models and cargo compartment trainer. Additionally, maintenance personnel can use the ITCs for training on engine run procedures.

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    Press Release – FAA Announces Record Number of Laser Events in 2010

    For Immediate Release
    January 19, 2011

    Pointing Lasers at Aircraft Poses a Serious Safety Issue

    WASHINGTON – The FAA announced today that in 2010, nationwide reports of lasers pointed at aircraft almost doubled from the previous year to more than 2,800. This is the highest number of laser events recorded since the FAA began keeping track in 2005.

    Los Angeles International Airport recorded the highest number of laser events in the country for an individual airport in 2010, with 102 reports, and the greater Los Angeles area tallied nearly twice that number, with 201 reports. Chicago O’Hare International Airport was a close second, with 98 reports, and Phoenix Sky Harbor International Airport and Norman Y. Mineta San Jose International Airport tied for the third highest number of laser events for the year with 80 each.

    “This is a serious safety issue,” said U.S. Transportation Secretary Ray LaHood. “Lasers can distract and harm pilots who are working to get passengers safely to their destinations.”

    Nationwide, laser event reports have steadily increased since the FAA created a formal reporting system in 2005 to collect information from pilots. Reports rose from nearly 300 in 2005 to 1,527 in 2009 and 2,836 in 2010.

    “The FAA is actively warning people not to point high-powered lasers at aircraft because they can damage a pilot’s eyes or cause temporary blindness,” said FAA Administrator Randy Babbitt. “We continue to ask pilots to immediately report laser events to air traffic controllers so we can contact local law enforcement officials.”

    Some cities and states have laws making it illegal to shine lasers at aircraft and, in many cases, people can face federal charges.

    The increase in reports is likely due to a number of factors, including the availability of inexpensive laser devices on the Internet; higher power levels that enable lasers to hit aircraft at higher altitudes; increased pilot reporting of laser strikes; and the introduction of green lasers, which are more easily seen than red lasers.

    Top 20 Laser Event Reports by Airport in 2010
    Airport No. of events
    Los Angeles International Airport (LAX) 102
    Chicago O’Hare International Airport (ORD) 98
    Phoenix/Sky Harbor International Airport (PHX) 80
    San Jose International Airport (SJC) 80
    McCarran International Airport (LAS) 72
    Philadelphia International Airport (PHL) 66
    Oakland International Airport (OAK) 55
    Honolulu International Airport (HNL) 47
    San Francisco International Airport (SFO) 39
    Denver International Airport (DEN) 38
    Newark Liberty International Airport (EWR) 38
    Tucson International Airport (TUS) 37
    Miami International Airport (MIA) 36
    Salt Lake City International Airport (SLC) 36
    Portland International Airport (PDX) 32
    LA/Ontario International Airport (ONT) 32
    Bob Hope Airport (BUR) 31
    Baltimore Washington International Airport (BWI) 31
    John Wayne Airport (SNA) 31
    Seattle-Tacoma International Airport (SEA) 26
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  • NTSB TO EXAMINE SAFETY EFFECTS OF ‘GLASS COCKPITS’ IN SMALL LIGHT AIRPLANES

    Press Release-March 4, 2010 The National Transportation Safety Board will hold a public Board meeting to consider a study on what effect the introduction of glass cockpits into small light general aviation airplanes is having on the safety record of those
    aircraft.

    In 2000, almost all new single engine light airplanes were manufactured with conventional analog flight instruments. Today almost all new light planes come equipped with digital flight display avionic systems, also known as “glass cockpits.” The enhanced function and information capabilities of these systems represent a significant change and potential improvement in the way general aviation pilots monitor information needed to control their aircraft.

    The NTSB initiated this study to determine if the transition to glass cockpits in light aircraft would improve the safety record of those planes.

    For more information…

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