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    AAR to Relocate Airlift Group to Melbourne, Florida

    Named as one of ‘The Most Trustworthy Companies’ by Forbes Magazine, AAR Reaches Major Milestones with the Transformation of New Airlift and Modifications Businesses.

    WOOD DALE, Ill., Nov. 8, 2010 — AAR announced today that it has selected Melbourne, Fla. as the new location for its airlift services and specialized aircraft modifications businesses, which the Company acquired in April 2010. Since completing the acquisition, AAR has installed a new leadership team and is rebranding the businesses as part of its overall integration strategy.

    “When we acquired Aviation Worldwide Services and its subsidiaries earlier this year, we shared our plans to relocate the operations, transform the leadership team with our people to instill AAR values and rebrand the business,” said David P. Storch, Chairman and Chief Executive Officer of AAR CORP. “I’m very pleased with the progress our team has made toward these goals and I look forward to being an important part of Melbourne’s business community and economy. I want to thank the State of Florida for their support and for working diligently to help make this move happen.”

    The business will move to hangars, facilities and offices at and near Melbourne International Airport. The relocation will be conducted in phases and is expected to be completed by spring 2011. AAR will establish an on-site management team and begin hiring select positions immediately. The business is expected to create as many as 225 jobs by the end of 2012.

    The business will operate as AAR Airlift Group, with airlift services provided by AAR Airlift and specialized aircraft modifications performed by AAR Aircraft Services – Melbourne. AAR Airlift Group is led by Jeffrey Schloesser, a former U.S. Army major general with more than 20 years of senior-level leadership and operations experience, which includes leading the Army’s modernization and transformation plan for a fleet of 4,000 aircraft and 76,000 personnel.

    AAR collaborated with elected officials from the State, economic development groups and the city of Melbourne to identify locations that would support AAR’s requirement for world-class flight operations, warehousing and administrative facilities and to develop a partnership to ensure the future growth of the business.

    “Aviation and aerospace is one of Florida’s targeted industries for stimulating economic growth and diversification; therefore, AAR’s entry is in line with our expansion strategy for this key sector,” said John Adams Jr., president & CEO of Enterprise Florida, the state’s principal economic development organization. “This project has exemplified Florida’s competitiveness; our ability to attract progressive and innovative businesses as we compete in the global economy.”

    Senate President–designate, Mike Haridopolos said, “We are pleased to welcome a company of AAR’s recognized quality and expertise to the Space Coast. Its relocation to Florida will create high-quality jobs, provide an instant economic boost, and solidify the leadership of the Space Coast in the defense and aerospace sectors.”

    “This is fantastic news for the Space Coast,” said U.S. Sen. Bill Nelson, who urged the company to relocate its airlift operations to Melbourne. “This move will bring much needed jobs to the area and provide a boost to the local economy. I applaud AAR’s decision to select Melbourne as the home for their airlift group.”

    “Companies like AAR will create the types of jobs we need in Florida during this critical time of transition in the aerospace industry,” noted State Senator Thad Altman, who represents East Central Florida. “In addition, the technological expertise and capabilities of AAR could lead to a terrific partnership with the state of Florida in areas such as emergency management preparation and civil defense.”

    “AAR is a highly respected, very successful company and we knew that this project would be extremely competitive,” said Lynda Weatherman, President and Chief Executive Officer, Economic Development Commission of Florida’s Space Coast. “We developed a creative package that showcased the Space Coast’s core capabilities, including the tax advantage benefits of a Florida location. We are delighted that AAR recognized our competitive advantages and look forward to the company’s success here at the Space Coast.”

    “AAR is a great example of the type of company that will help Florida diversify its aerospace economy to position for success in the coming months and years,” noted Space Florida President Frank DiBello. “This company is well-established in the defense industry and will bring continued innovation to Florida’s aerospace industry. We are extremely pleased to welcome them to the Space Coast.”

    AAR currently has facilities in Clearwater, Jacksonville, Medley and Miami, employing 1,200 highly-skilled workers and contributing approximately $150 million annually in economic impact to the state of Florida. At full employment, the new Melbourne location is projected to add an additional $42.3 million to the state’s economy.
    “All over the country communities are working hard to land companies of AAR’s caliber. We’re fortunate Melbourne International Airport was chosen as the site for this significant expansion. It’s good for Melbourne. It’s good for the region,” said Harry Goode, Mayor of Melbourne and Chairman, Melbourne Airport Authority.

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    SPACE STATION ASTRONAUTS TO CONNECT WITH CENTRAL FLORIDA STUDENTS

    WASHINGTON — International Space Station residents Scott Kelly, Cady Coleman and Paolo Nespoli will speak on Tuesday, Jan. 11, to 150 students from Kathleen High School’s Central Florida Aerospace Academy (CFAA) in Lakeland, Fla.

    The CFAA prepares students to go into advanced aerospace education or the aerospace industry. In 2009, the academy received an agency grant to develop a NASA-based science, technology, engineering and , or STEM, curriculum.

    The station astronauts will answer student questions on Jan. 11, from 11-11:20 a.m. EST. In preparation for the conversation with astronauts in space, the students have been participating in science activities, exploring careers in science with local scientists and engineers, studying a floor plan of the International Space Station and learning about experiments in microgravity.

    The event will air live on NASA Television and on the agency’s website. Media interested in attending this event should contact Obie Young at 407-341-3072 by 2 p.m. Monday, Jan. 10.

    The live downlink will be shared with other students through the Florida Aviation Network, the Federal Aviation Administration Training Network and the Government Educational Training Network. This will give approximately 93,000 students in Polk County’s K-12 classrooms the opportunity to watch the event.

    NASA astronauts Kelly and Coleman and Nespoli of the European Space Agency are conducting science experiments aboard the space station. Kelly serves as the Expedition 26 commander until March when he returns home. Coleman and Nespoli will complete their station mission in May.

    This live, in-flight education downlink is one in a series with educational organizations in the U.S. and abroad to improve teaching and learning in STEM subjects. It is an integral component of Teaching From Space, a NASA education program. Teaching From Space promotes learning opportunities and builds partnerships with the education community using the unique environment of space and NASA’s human spaceflight program.

    For NASA TV downlink, schedule and streaming video information, visit:

    http://www.nasa.gov/ntv

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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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    NTSB Says Aggressive Test Flight Schedule, Overlooked Errors Led to Stall and Crash

    Oct. 10, 2012
    The National Transportation Safety Board determined today that the probable cause of the crash of an experimental Gulfstream G650 on April 2, 2011, in Roswell, N.M., was the result of an aerodynamic stall and uncommanded roll during a planned takeoff test flight conducted with only one of the airplane’s two engines operating.
    The Board found that the crash was the result of Gulfstream’s failure to properly develop and validate takeoff speeds and recognize and correct errors in the takeoff safety speed that manifested during previous G650 flight tests; the flight test team’s persistent and aggressive attempts to achieve a takeoff speed that was erroneously low; and Gulfstream’s inadequate investigation of uncommanded roll events that occurred during previous flight tests, which should have revealed incorrect assumptions about the airplane’s stall angle of attack in ground effect.

    Contributing to the accident, the NTSB found, was Gulfstream’s pursuit of an aggressive flight test schedule without ensuring that the roles and responsibilities of team members were appropriately defined, sufficient technical planning and oversight was performed, and that hazards had been fully identified and addressed with appropriate, effective risk controls.

    “In this investigation we saw an aggressive test flight schedule and pressure to get the aircraft certified,” said NTSB Chairman Deborah A.P. Hersman. “Deadlines are essential motivators, but safety must always trump schedule.”

    At approximately 9:34 a.m. Mountain Time, during takeoff on the accident flight, the G-650 experienced a right wing stall, causing the airplane to roll to the right with the right wingtip contacting the runway. The airplane then departed the runway, impacting a concrete structure and an airport weather station, resulting in extensive structural damage and a post-crash fire. The two pilots and two flight engineers on board were fatally injured and the airplane was substantially damaged.

    The NTSB made recommendations to the Flight Test Safety Committee and the Federal Aviation Administration to improve flight test operating policies and encourage manufacturers to follow best practices and to coordinate high-risk flight tests. And the Board recommended that Gulfstream Aerospace Corporation commission an independent safety audit to review the company’s progress in implementing a flight test safety management system and provide information about the lessons learned from its implementation to interested manufacturers, flight test safety groups and other appropriate parties.

    “In all areas of aircraft manufacturing, and particularly in flight testing, where the risks are greater, leadership must require processes that are complete, clear and include well-defined criteria,” said Chairman Deborah A.P. Hersman. “This crash was as much an absence of leadership as it was of lift.”

    The preliminary synopsis of the report is below:

    NATIONAL TRANSPORTATION SAFETY BOARD
    Public Meeting of October 10, 2012
    (Information subject to editing)
    Aircraft Accident Report:
    Crash During Experimental Test Flight
    Gulfstream Aerospace Corporation GVI (G650), N652GD
    Roswell, New Mexico
    April 2, 2011

    NTSB/AAR-12/02

    This is a synopsis from the National Transportation Safety Board’s report and does not include the NTSB’s rationale for the conclusions, probable cause, and safety recommendations. Safety Board staff is currently making final revisions to the report from which the attached conclusions and safety recommendations have been extracted. The final report and pertinent safety recommendation letters will be distributed to recommendation recipients as soon as possible. The attached information is subject to further review and editing.

    Executive Summary

    On April 2, 2011, about 0934 mountain daylight time, an experimental Gulfstream Aerospace Corporation GVI (G650), N652GD, crashed during takeoff from runway 21 at Roswell International Air Center Airport, Roswell, New Mexico. The two pilots and the two flight test engineers were fatally injured, and the airplane was substantially damaged by impact forces and a postcrash fire. The airplane was registered to and operated by Gulfstream as part of its G650 flight test program. The flight was conducted under the provisions of 14 Code of Federal Regulations Part 91. Visual meteorological conditions prevailed at the time of the accident.

    The accident occurred during a planned one-engine-inoperative (OEI) takeoff when a stall on the right outboard wing produced a rolling moment that the flight crew was not able to control, which led to the right wingtip contacting the runway and the airplane departing the runway from the right side. After departing the runway, the airplane impacted a concrete structure and an airport weather station, resulting in extensive structural damage and a postcrash fire that completely consumed the fuselage and cabin interior.

    The National Transportation Safety Board’s (NTSB) investigation of this accident found that the airplane stalled while lifting off the ground. As a result, the NTSB examined the role of “ground effect” on the airplane’s performance. Ground effect refers to changes in the airflow over the airplane resulting from the proximity of the airplane to the ground. Ground effect results in increased lift and reduced drag at a given angle of attack (AOA) as well as a reduction in the stall AOA. In preparing for the G650 field performance flight tests, Gulfstream considered ground effect when predicting the airplane’s takeoff performance capability but overestimated the in ground effect stall AOA. Consequently, the airplane’s AOA threshold for stick shaker (stall warning) activation and the corresponding pitch limit indicator (on the primary flight display) were set too high, and the flight crew received no tactile or visual warning before the actual stall occurred.

    The accident flight was the third time that a right outboard wing stall occurred during G650 flight testing. Gulfstream did not determine (until after the accident) that the cause of two previous uncommanded roll events was a stall of the right outboard wing at a lower-than-expected AOA. (Similar to the accident circumstances, the two previous events occurred during liftoff; however, the right wingtip did not contact the runway during either of these events.) If Gulfstream had performed an in-depth aerodynamic analysis of these events shortly after they occurred, the company could have recognized before the accident that the actual in-ground-effect stall AOA was lower than predicted.

    During field performance testing before the accident, the G650 consistently exceeded target takeoff safety speeds (V2). V2 is the speed that an airplane attains at or before a height above the ground of 35 feet with one engine inoperative. Gulfstream needed to resolve these V2 exceedances because achieving the planned V2 speeds was necessary to maintain the airplane’s 6,000-foot takeoff performance guarantee (at standard sea level conditions). If the G650 did not meet this takeoff performance guarantee, then the airplane could only operate on longer runways. However, a key assumption that Gulfstream used to develop takeoff speeds was flawed and resulted in V2 speeds that were too low and takeoff distances that were longer than anticipated.

    Rather than determining the root cause for the V2 exceedance problem, Gulfstream attempted to reduce the V2 speeds and the takeoff distances by modifying the piloting technique used to rotate the airplane for takeoff. Further, Gulfstream did not validate the speeds using a simulation or physics-based dynamic analysis before or during field performance testing. If the company had done so, then it could have recognized that the target V2 speeds could not be achieved even with the modified piloting technique. In addition, the difficulties in achieving the target V2 speeds were exacerbated in late March 2011 when the company reduced the target pitch angle for some takeoff tests without an accompanying increase in the takeoff speeds.

    Gulfstream maintained an aggressive schedule for the G650 flight test program so that the company could obtain Federal Aviation Administration (FAA) type certification by the third quarter of 2011. The schedule pressure, combined with inadequately developed organizational processes for technical oversight and safety management, led to a strong focus on keeping the program moving and a reluctance to challenge key assumptions and highlight anomalous airplane behavior during tests that could slow the pace of the program. These factors likely contributed to key errors, including the development of unachievable takeoff speeds, as well as the superficial review of the two previous uncommanded roll events, which allowed the company’s overestimation of the in-ground-effect stall AOA to remain undetected.

    After the accident, Gulfstream suspended field performance testing through December 2011 while the company examined the circumstances of the accident. In March 2012, Gulfstream reported that company field performance testing had been repeated and completed successfully. In June 2012, the company reported that FAA certification field performance testing had been successfully completed. Gulfstream obtained FAA type certification for the G650 on September 7, 2012.

    Conclusions

    1. The test team’s focus on achieving the takeoff safety speeds for the flight tests and the lack of guidance specifying precisely when the pitch angle target and pitch limit applied during the test maneuver contributed to the team’s decision to exceed the initial pitch target and the pitch angle at which a takeoff test was to be discontinued.

    2. A stall on the right outboard wing produced a right rolling moment that the flight crew was not able to control, which led to the right wingtip contacting the runway and the airplane departing the runway from the right side.

    3. Given the airplane’s low altitude, the time-critical nature of the situation, and the ambiguous stall cues presented in the cockpit, the flight crew’s response to the stall event was understandable.

    4. The impact forces from the accident were survivable, but the cabin environment deteriorated quickly and became unsurvivable because of the large amount of fuel, fuel vapor, smoke, and fire entering the cabin through the breaches in the fuselage.

    5. The airplane stalled at an angle of attack (AOA) that was below the in ground effect stall AOA predicted by Gulfstream and the AOA threshold for the activation of the stick shaker stall warning.

    6. If Gulfstream had performed an in-depth aerodynamic analysis of the cause of two previous G650 uncommanded roll events, similar to the analyses performed for roll events during previous company airplane programs, the company could have recognized that the actual in-ground-effect stall angle of attack for the accident flight test was significantly lower than the company predicted.

    7. Gulfstream’s decision to use a takeoff speed development method from a previous airplane program was inappropriate and resulted in target takeoff safety speed values that were too low to be achieved.

    8. By not performing a rigorous analysis of the root cause for the ongoing difficulties in achieving the G650 takeoff safety speeds (V2), Gulfstream missed an opportunity to recognize and correct the low target V2 speeds.

    9. Before the accident flight, Gulfstream had sufficient information from previous flight tests to determine that the target takeoff safety speeds (V2) could not be achieved with a certifiable takeoff rotation technique and that the V2 speeds needed to be increased.

    10. Deficiencies in Gulfstream’s technical planning and oversight contributed to the incorrect speeds used on the day of the accident.

    11. Because Gulfstream did not clearly define the roles and responsibilities for on site test team members, critical safety-related parameters were not being adequately monitored and test results were not being sufficiently examined during flight testing on the day of the accident.

    12. Gulfstream’s focus on meeting the G650’s planned certification date caused schedule related pressure that was not adequately counterbalanced by robust organizational processes to prevent, identify, and correct the company’s key engineering and oversight errors.

    13. Gulfstream’s flight test safety program at the time of the accident was deficient because risk controls were insufficient and safety assurance activities were lacking.

    14. The inherent risks associated with field performance flight testing, and minimum unstick speed testing in particular, could be reduced if airplane manufacturers considered the potential for a lower maximum lift coefficient in ground effect when estimating the stall angle of attack in ground effect.

    15. Effective flight test standard operating policies and procedures that are fully implemented by manufacturers would help reduce the inherent risks associated with flight testing.

    16. Flight test safety management system guidance specifically tailored to the needs of manufacturers would help promote the development of effective flight test safety programs.

    17. External safety audits would help Gulfstream monitor the implementation of safety management principles and practices into its flight test operations and sustain long-term cultural change.

    18. Flight test safety would be enhanced if manufacturers and flight test industry groups had knowledge of the lessons learned from Gulfstream’s implementation of its flight test safety management system.

    19. Advance coordination between flight test operators and airport operations and aircraft rescue and firefighting personnel for high-risk flight tests could reduce the response time to an accident site in the event of an emergency.

    Probable Cause

    The National Transportation Safety Board determines that the cause of this accident was an aerodynamic stall and subsequent uncommanded roll during a one engine-inoperative takeoff flight test, which were the result of (1) Gulfstream’s failure to properly develop and validate takeoff speeds for the flight tests and recognize and correct the takeoff safety speed (V2) error during previous G650 flight tests, (2) the G650 flight test team’s persistent and increasingly aggressive attempts to achieve V2 speeds that were erroneously low, and (3) Gulfstream’s inadequate investigation of previous G650 uncommanded roll events, which indicated that the company’s estimated stall angle of attack while the airplane was in ground effect was too high. Contributing to the accident was Gulfstream’s failure to effectively manage the G650 flight test program by pursuing an aggressive program schedule without ensuring that the roles and responsibilities of team members had been appropriately defined and implemented, engineering processes had received sufficient technical planning and oversight, potential hazards had been fully identified, and appropriate risk controls had been implemented and were functioning as intended.

    Recommendations

    To the Federal Aviation Administration:

    1. Inform domestic and foreign manufacturers of airplanes that are certified under 14 Code of Federal Regulations Parts 23 and 25 about the circumstances of this accident and advise them to consider, when estimating an airplane’s stall angle of attack in ground effect, the possibility that the airplane’s maximum lift coefficient in ground effect could be lower than its maximum lift coefficient in free air.

    2. Work with the Flight Test Safety Committee to develop and issue detailed flight test operating guidance for manufacturers that addresses the deficiencies documented in this report regarding flight test operating policies and procedures and their implementation.

    3. Work with the Flight Test Safety Committee to develop and issue flight test safety program guidelines based on best practices in aviation safety management.

    4. After the Flight Test Safety Committee has issued flight test safety program guidelines, include these guidelines in the next revision of Federal Aviation Administration Order 4040.26, Aircraft Certification Service Flight Test Risk Management Program.

    5. Inform 14 Code of Federal Regulations Part 139 airports that currently have (or may have in the future) flight test activity of the importance of advance coordination of high risk flight tests with flight test operators to ensure adequate aircraft rescue and firefighting resources are available to provide increased readiness during known high risk flight tests.

    To the Flight Test Safety Committee:

    6. In collaboration with the Federal Aviation Administration, develop and issue flight test operating guidance for manufacturers that addresses the deficiencies documented in this report regarding flight test operating policies and procedures and their implementation, and encourage manufacturers to conduct flight test operations in accordance with the guidance.

    7. In collaboration with the Federal Aviation Administration, develop and issue flight test safety program guidelines based on best practices in aviation safety management, and encourage manufacturers to incorporate these guidelines into their flight test safety programs.

    8. Encourage members to provide notice of and coordinate high-risk flight tests with airport operations and aircraft rescue and firefighting personnel.

    To Gulfstream Aerospace Corporation:

    9. Commission an audit by qualified independent safety experts, before the start of the next major certification flight test program, to evaluate the company’s flight test safety management system, with special attention given to the areas of weakness identified in this report, and address all areas of concern identified by the audit.

    10. Provide information about the lessons learned from the implementation of its flight test safety management system to interested manufacturers, flight test industry groups, and other appropriate parties.

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    FAA Proposes Changes, Additions to Safety Training

    The FAA is proposing additional training for pilots, due to pilot error allegations from the Continental flight 3407 crash in western New York. The FAA said the proposed rules regarding additional training, including real life scenarios in more advanced flight simulators, remedial training for pilots proven deficient, would be the most substantial and wide-ranging overhaul of airline crew ever. Training will be part of a group effort rather than an isolated testing environment.

    In the Continental Flight 3407 crash, the plane went into a full stall, activated the “stick pusher” (which points a plane’s nose downward to pick up speed.) The captain pulled back when the proper response would have been to push forward. The correction in a timely fashion would have saved the flight.

    FAA Announcement PDF

    Training Proposal PDF (full)

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    NASA TO ANNOUNCE LATEST FINDINGS BY KEPLER SPACECRAFT

    Aug. 23, 2010

    J.D. Harrington
    Headquarters, Washington

    WASHINGTON — NASA will hold a media teleconference Thursday, Aug. 26, at 1 p.m. EDT to discuss the Kepler spacecraft’s latest discovery about an intriguing planetary system.

    Kepler, a space observatory, looks for the data signatures of planets by measuring tiny decreases in the brightness of stars when planets cross in front of, or transit, them. In June, mission scientists announced the mission has identified more than 700 planet candidates, including five candidate systems that appear to have more than one
    transiting planet.

    Participating telecon panelists are:
    — Jon Morse, director, Science Mission Directorate Astrophysics
    Division, NASA Headquarters, Washington
    — William Borucki, Kepler Mission science principal investigator,
    NASA Ames Research Center, Moffett Field, Calif.
    — Matthew Holman, associate director, Theoretical Astrophysics
    Division, Harvard-Smithsonian Center for Astrophysics, Cambridge,
    Mass.
    — Alycia Weinberger, astronomer, Department of Terrestrial Magnetism,
    Carnegie Institution of Washington, Washington

    To participate in the teleconference, reporters should e-mail J.D. Harrington at j.d.harrington@nasa.gov by 11 a.m. EDT, Thursday, Aug. 26. Journalists must include their name, media affiliation and telephone number. Supporting information for the briefing will be posted at: http://www.nasa.gov/kepler when the telecon begins.

    Audio of the teleconference will be streamed live at:
    http://www.nasa.gov/newsaudio

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