NTSB

National Transportation Safety Board

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    More Battery Buzz Builds for Boeing

    • Since U.S. and Japanese authorities have ordered the grounding of Boeing 787s, All Nippon Airways is canceling 177 flights beginning Wednesday. Considering that weather is expected to be grounding European flights anyway, the grounding could not have come at a better time. Plus, any time the precautions come before the fatalities, it is a good day.
    • GS Yuasa Corporation in Kyoto makes the “notorious” lithium-ion battery in the Japan Airlines Co. (9201) plane and an emergency landing by an All Nippon Airways Co. (9202) jet. The Japan Aerospace Exploration Agency will be running battery tests. An NTSB group of four officials and two Japan transport officials will be on hand. To be the fly on the wall of that test!
    • The ANA pilot received 3 warnings that the battery was overheating. This suggests the safety components were working.
    • Investigators were sent to the U.K. to investigate a valve actuator maker for the 787. The company was not identified. If a problem is found, the name of the company will soon be public knowledge
    • The technology has a damning history: Securaplane’s Tucson, Arizona-based unit made the battery charger on the jet that was in the Boston fire on Jan. 7. Whistleblower Michael Leon was employed at Securaplane when he wrote a report (2006) saying that the battery technology was risky and that substitute battery technology should be used on the 787, after which a battery test went wrong and burnt down a Securaplane building. Leon refused to ship a battery assembly to Boeing for the 787 and that battery later malfunctioned in a prototype. Why haven’t we heard this story before? Was the system Michael Leon objected to the same one that is causing problems now?
    • The Seattle Times reported that hot chemicals sprayed out of the battery on the 787 Dreamliner that made an emergency landing in Japan, leaving a gooey dark residue—a different malfunction from the incident in Boston. The plot thickens. More than one problem? Which is the onetime event, and which is the chronic issue (if at all)? That is the factor that will be significant for Boeing and the future of the Dreamliner.
    • Boeing stands by the 4 battery circuits, because they stopped the overheating before a fire started.
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    Third NTSB Investigative Update on Boeing 787 Battery Fire in Boston


    January 20, 2013
    WASHINGTON – The National Transportation Safety Board today released a third update on its investigation into the Jan. 7 fire aboard a Japan Airlines Boeing 787 at Logan International Airport in Boston.

    The lithium-ion battery that powered the auxiliary power unit has been examined in the NTSB Materials Laboratory in Washington. The battery was x-rayed and CT scans were generated of the assembled battery. The investigative team has disassembled the APU battery into its eight individual cells for detailed examination and documentation. Three of the cells were selected for more detailed radiographic examination to view the interior of the cells prior to their disassembly. These cells are in the process now of being disassembled and the cell’s internal components are being examined and documented.

    Investigators have also examined several other components removed from the airplane, including wire bundles and battery management circuit boards. The team has developed test plans for the various components removed from the aircraft, including the battery management unit (for the APU battery), the APU controller, the battery charger and the start power unit. On Tuesday, the group will convene in Arizona to test and examine the battery charger and download nonvolatile memory from the APU controller. Several other components have been sent for download or examination to Boeing’s facility in Seattle and manufacturer’s facilities in Japan.

    Finally, examination of the flight recorder data from the JAL B-787 airplane indicate that the APU battery did not exceed its designed voltage of 32 volts.

    In accordance with international investigative treaties, the Japan Transport Safety Board and French Bureau d’Enquêtes et d’Analyses pour la sécurité de l’aviation civile have appointed accredited representatives to this investigation. Similarly, the NTSB has assigned an accredited representative to assist with the JTSB’s investigation of the Jan. 15 battery incident involving an All Nippon Airways B-787. Both investigations remain ongoing.

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    NTSB Sends Assistance

    On Jan 16, 2013, an ANA All Nippon Airways Boeing 787-8 Dreamliner was en route from Yamaguchi-Ube Airport to Tokyo-Haneda Airport when smoke in the forward electrical compartment developed. Also, an unusual smell was detected.

    The flight made an emergency landing.

    There were 137 passengers aboard.One passenger was injured in the evacuation. The firefighters did not find any fire.

    The NTSB sent out a release that said “The National Transportation Safety Board is sending an investigator to Japan to assist in the investigation of an emergency landing of an ANA Boeing 787 that occurred yesterday. Initial reports indicate that the crew received multiple messages in the cockpit concerning the battery and other systems that were affected, and also reported smoke in the cockpit and an odor in the cabin. The airplane subsequently landed, and passengers and crew evacuated via emergency slides.”

    Investigator Lorenda Ward is the U. S. accredited representative to the JTSB’s investigation and will work alongside reps from the FAA and Boeing.

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    NTSB Still Investigating

    We should remember this auxiliary battery failed after the passengers had disembarked. As the experts explain it, the battery is an auxiliary. This particular failure wouldn’t be likely to happen in the air, which technically makes it non-life threatening, although a tech or firefighter who was injured when the fire was extinguished might feel differently. I’m not trying to minimize the problem, but passengers’ lives were not threatened.

    Nevertheless, I’m looking forward to Boeing’s solution to this. All the experts tell me this is what happens with new planes. Just a matter of getting the kinks out. While it’s not unexpected that new approaches (replacing the hydraulics with high powered electrics) need some ironing out, we’ll all sleep a lot better, and fly a lot easier when the situation is addressed.

    NTSB Provides Second Investigative Update on Boeing 787 Battery Fire in Boston

    January 14, 2013
    WASHINGTON – The National Transportation Safety Board today released a second update on its investigation into the Jan. 7 fire aboard a Japan Airlines Boeing 787 at Logan International Airport in Boston.

    The lithium-ion battery that powered the auxiliary power unit on the airplane was removed and transported back to the NTSB Materials Laboratory in Washington on Jan. 10. The battery is currently being examined by NTSB investigators, who plan to disassemble it this week.

    In advance of that work, under the direction of the NTSB, radiographic examinations of the incident battery and an exemplar battery were conducted this past weekend at an independent test facility. The digital radiographs and computed tomography scans generated from this examination allowed the team to document the internal condition of the battery prior to disassembling it.

    In addition, investigators took possession of burned wire bundles, the APU battery charger, and several memory modules. The maintenance and APU controller memory modules will be downloaded to obtain any available data. Investigators also documented the entire aft electronics bay including the APU battery and the nearby affected structure where components and wire bundles were located.

    The airplane’s two combined flight data recorder and cockpit voice recorder units were transported to NTSB headquarters and have been successfully downloaded. The information is currently being analyzed by the investigative team.

    The airport emergency response group documented the airport rescue and firefighting efforts to extinguish the fire, which included interviews with first responders. Fire and rescue personnel were able to contain the fire using a clean agent (Halotron), however, they reported experiencing difficulty accessing the battery for removal during extinguishing efforts. All fire and rescue personnel responding to the incident had previously received aircraft familiarization training on the Boeing 787.

    ntsb_photo
    NTSB photo of the burned auxiliary power unit battery from a JAL Boeing 787 that caught fire on Jan. 7 at Boston’s Logan International Airport. The dimensions are 19×13.2×10.2 inches and it weighs approximately 63 pounds (new).

    In accordance with international investigative treaties, the Japan Transport Safety Board and French Bureau d’Enquêtes et d’Analyses pour la sécurité de l’aviation civile have appointed accredited representatives to the investigation. The NTSB-led investigative team is comprised of subject matter groups in the areas of airplane systems, fire, airport emergency response, and data recorders and includes experts from the Federal Aviation Administration, The Boeing Company, US Naval Surface Warfare Center’s Carderock Division, Japan Airlines (aircraft operator), GS Yuasa (battery manufacturer), and Thales Avionics Electrical Systems (APU battery/charger system).

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    NTSB sending Team to Peru Crash Investigation


    Jan. 9, 2013
    WASHINGTON – The National Transportation Safety Board is sending a team of investigators to Pucallpa, Peru, to assist the Government of Peru with its investigation of yesterday’s crash involving a Boeing helicopter. According to the U.S. Department of State, the accident claimed the lives of five American citizens.

    On Monday afternoon, in Pucallpa, Peru, a Boeing-Vertol 234 helicopter, operated by the U.S. operator Columbia Helicopters, crashed shortly after takeoff. The helicopter had departed from FAP Captain David Abenzur Rengifo International Airport, Pullcapa, Peru enroute to Tarapoto, Peru. It has been reported that all seven persons aboard the aircraft sustained fatal injuries.

    The NTSB has designated senior air safety investigator, Paul Cox, as the U.S. Accredited Representative. He will be accompanied by two NTSB investigators with expertise in helicopter systems and operations, a representative from the Federal Aviation Administration, and a representative from Columbia Helicopters. The team is expected to arrive in Peru tonight.

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    NTSB Reports Uncertified Pilot in December Crash

    According to the NtSB Preliminary report of the Beech crash on December 18, 2012, about 0002 mountain standard time (MST), a Beech B100, N499SW, collided with trees at Libby, Montana. Stinger Welding was operating the airplane under the provisions of 14 Code of Federal Regulations (CFR) Part 91. The noncertificated pilot and one passenger sustained fatal injuries; the airplane sustained substantial damage from impact forces. The cross-country personal flight departed Coolidge, Arizona, about 2025 MST on December 17th, with Libby as the planned destination. Visual meteorological conditions prevailed at the nearest official reporting station of Sandpoint, Idaho, 264 degrees at 46 miles, and an instrument flight rules (IFR) flight plan had been filed.

    Read the preliminary report

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    The NTSB Sends Two Alerts on the 787 Post Flight Fire in Boston

    First, it does appear that there were two different 787 events at Logan. One was a fire that came about due to overheating and explosion of a battery in a lower bay. Both of the reports below refer to the same event, which grounded the plane. The second event was either a fuel leak or overfueling, which only delayed and did not cancel a different flight four hours while the problem was fixed.

    My criticism is that it APPEARS we are moving too quickly because what is surfacing are minor events that could lead to major events. A battery fire could cause a plane crash, especially on a transatlantic flight. I would like to feel confident that Boeing will easily handle any battery or electrical problem as one of those new plane new plane glitches that one might consider teething. And if this problem “dogs” Boeing shares (as one headline indicates), then better that it dog shares than kill 400 people.

    Here are the NTSB press releases regarding the Dreamliner Battery Fire. The first one…

    NTSB INVESTIGATORS LOOKING INTO BOEING 787 SMOKE EVENT IN BOSTON

    Jan. 7, 2013
    WASHINGTON– Investigators with the National Transportation Safety Board are gathering information regarding reports of smoke aboard a Boeing 787 at Boston’s Logan Airport today.

    The Japan Airlines 787 was on the ground and empty of passengers at the time of the incident.

    The NTSB has dispatched an investigator to Boston. Based on a review of the factual information gathered, the NTSB will determine the extent of its investigation.

    and the second one…

    NTSB PROVIDES INVESTIGATIVE UPDATE ON BOEING 787 FIRE INCIDENT IN BOSTON

    Jan. 8, 2013
    WASHINGTON – The National Transportation Safety Board today released an update on its formal investigation of Monday’s fire aboard a Japan Airlines Boeing 787 at Logan International Airport in Boston. There were no passengers or crew on board at the time. One firefighter received minor injuries.

    In addition to an investigator already on scene who visually inspected the airplane last night, the NTSB has sent two additional investigators to Boston and formed investigative groups to look at airworthiness and fire and airport emergency response. Senior Air Safety Investigator David Helson has been designated as the investigator-in-charge.

    Parties to the investigation are the Federal Aviation Administration and The Boeing Company. In addition, the Japan Transport Safety Board has appointed an accredited representative and Japan Airlines will assist the JTSB as technical advisors.

    Initial investigative findings include:

    • The NTSB investigator on scene found that the auxiliary power unit battery had severe fire damage. Thermal damage to the surrounding structure and components is confined to the area immediately near the APU battery rack (within about 20 inches) in the aft electronics bay.

    • Preliminary reports from Japan Airlines representatives indicate that airplane maintenance and cleaning personnel were on the airplane with the APU in operation just prior to the detection of smoke in the cabin and that Boston Logan Airport Rescue and Fire Fighting were contacted.

    • Rescue and fire personnel and equipment responded to the airplane and detected a fire in the electronics and equipment bay near the APU battery box. Initial reports indicate that the fire was extinguished about 40 minutes after arrival of the first rescue and fire personnel. One firefighter received minor injuries.

    Here is the 2nd NTSB Press Release:

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    Boeing 787 Smokes Battery in Boston


    On January 7, 2013, a Japan Airlines Boeing 787 Dreamliner Japan-Boston had already landed in Boston, and all 184 passengers had safely disembarked when smoke filled the cabin.

    A fire was found in a battery aboard the plane. Boston Firefighters arrived at 10:40 a.m. and put out the fire.

    Passengers were provided alternative transportation and overnight accommodations.

    Electrical issues in the avionics bay where the battery is located are a known issue in this type of plane, which uses electrical motors instead of hydraulics in certain areas. The auxiliary battery in the compartment kicks in after the engine kicks off. That’s what happened on test flights, and from what I have heard, that is what happened here.

    In George’s Point of View

    Let’s slow down with this great plane. Let’s get the kinks out of it before we put humans on too many of these Dreamliners. Let them stay Dreamliner and not become Nightmareliners. United is starting service but are these planes really ready? There have been engine problems and some spooky events. We don’t read too much about them, but I know they have occurred. I love this plane, I want to fly all over the world in it, and if I live long enough, I will, but, is it ready?

    According to the NTSB report below, the NTSB seems to agree with me that incidents like this warrant investigation.

    Press Release
    WASHINGTON– Investigators with the National Transportation Safety Board are gathering information regarding reports of smoke aboard a Boeing 787 at Boston’s Logan Airport today.

    The Japan Airlines 787 was on the ground and empty of passengers at the time of the incident.

    The NTSB has dispatched an investigator to Boston. Based on a review of the factual information gathered, the NTSB will determine the extent of its investigation.
    Video Below

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    Wildlife Feedback Wanted

    The FAA is looking for comments regarding minimum acceptable standards for the conduct and preparation of Wildlife Hazard Site Visits, Hazard Assessments and Hazard Management Plans on the following document:

    For more information, visit Clarification of Wildlife Hazard Management Requirements for Non-Certificated Federally Obligated Airports in the National Plan of Integrated Airport Systems (NPIAS)

    The purpose of this notice is to clarify the FAA’s interpretation of 49 U.S.C. 47107(a) (19) and the corollary Grant Assurance No. 19, relating to airport operations and maintenance. The FAA proposes to require sponsors of federally obligated, non-certificated airports that, after the effective date of this Federal Register Notice, accept a new airport development grant funded under the Airport Improvement Program, or accept a transfer of land under the Surplus Property Act for airport purposes to identify and mitigate wildlife hazards at their airports. These actions will take the form of initial Wildlife Hazard Site Visits (WHSVs) or Wildlife Hazard Assessments (WHAs), depending on the size of the airport, potentially followed by more detailed Wildlife Hazard Management Plans (WHMPs).
    The purpose of a WHSV is for the sponsor to identify any immediate hazards and for the FAA to determine whether a more comprehensive WHA is necessary.

    For More information, see APHIS below:
    Airport Wildlife Hazards Program

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    NTSB 2013 Most Wanted List


    November 13, 2012
    Washington – The National Transportation Safety Board will hold a press conference at the National Press Club to unveil its 2013 Most Wanted List of transportation safety issues.

    Event: Press Conference

    Date/Time: Wednesday, Nov. 14, 2012, 10:00 a.m. (EDT)

    Location: National Press Club
    529 14th Street, NW 13th Floor (Zenger Room)
    Washington, DC 20045

    Participants: NTSB Board Members

    NTSB Board Members will be available for interviews following the event.

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    Safety: U.S. Aviation Industry, FAA Share Safety Information with NTSB

    Nov. 8, 2012
    WASHINGTON – The Department of Transportation’s Federal Aviation Administration (FAA), airlines and aviation labor unions today announced a partnership with the National Transportation Safety Board (NTSB) to share summarized safety information that could help prevent accidents.

    The information, shared through an initiative called the Aviation Safety Information Analysis and Sharing (ASIAS) Executive Board, will help the NTSB determine if an accident is a unique event or an indication of systemic risks. Under ASIAS, airlines and unions already voluntarily share safety information with FAA to identify trends.

    “The nation’s impressive safety record is in part due to an unwavering commitment by government and industry to work together to monitor data and identify trends to prevent accidents,” said FAA Acting Administrator Michael Huerta. “More than 90 percent of air carriers use voluntary reporting programs and this has led to significant training, operational and maintenance program improvements.”

    “I am grateful to the FAA, industry and labor for their leadership,’’ said Deborah A.P. Hersman, NTSB chairman. “Better information leads to better investigations.”

    “The U.S. aviation industry’s commitment to sharing safety information has already successfully helped us lower the fatality risk on commercial flights,” said Captain Paul Morell, Vice President, Safety, Security and Environmental Programs, US Airways and ASIAS Executive Board co-chair. “Through ASIAS, we know that industry and government are investing in the right safety solutions.”

    ASIAS uses aggregate, protected data from industry and government voluntary reporting programs, without identifying the source of the data, to proactively find safety issues, identify safety enhancements, and measure the effectiveness of solutions. ASIAS began in 2007 and now has 44 members and receives voluntary data representing 95 percent of all commercial air carrier operations. It onnects 131 data and information sources across the industry and is integrated into the Commercial Aviation Safety Team (CAST) process. CAST is a joint government and industry effort that uses a data-driven strategy to reduce the commercial aviation fatality risk in the United States and promote safety initiatives throughout the world. Their work, along with new aircraft, regulations and other activities, reduced the fatality risk for commercial aviation in the United States by 83 percent from 1998 to 2008.

    Seven of CAST’s 76 safety enhancements have been derived from forward-looking data analysis in ASIAS. Additionally, ASIAS stays connected to CAST’s safety enhancements to track the effectiveness of those interventions. The databases used to identify trends include Flight Operations Quality Assurance (FOQA) programs, the Aviation Safety Action Partnership (ASAP), the Air Traffic Safety Action Program (ATSAP), FAA surveillance data, and many others.

    The agreement outlines the procedures, guidelines, and roles and responsibilities for the ASIAS Executive Board to address specific written NTSB requests for ASIAS information. The agreement does not allow any of the parties to use aggregate FOQA, ASAP, ATSAP or other non-publicly available data to measure an individual data contributor’s performance or safety.

    The NTSB will initiate written requests for ASIAS information related to aircraft accidents involving U.S. air carriers that occur in the United States and address safety issues that both the NTSB and the ASIAS board determine are significant and non-routine or reoccurring. The NTSB will not publicly disclose ASIAS information it receives via the process unless the ASIAS Executive Board agrees.

    The NTSB will share with ASIAS its archived air carrier accident and incident flight data recorder information related to a request.

    Peggy Gilligan, Associate Administrator for Aviation Safety, FAA and Captain Paul Morell, Vice President, Safety, Security and Environmental Programs, US Airways signed the agreement for the ASIAS Executive Board. David Mayer, Managing Director, signed for the NTSB.

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    NTSB Safety Recommendations


    The NTSB issued 10new recommendations, including five to the FederalAviation Administration, three to the Flight Test Safety Committee, and the following two recommendations to Gulfstream
    Aerospace Corporation:

    A-12-62
    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.

    A-12-63
    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.

    Safety Recommendations

  • NTSB Announces Final Rules on Appeals

    NTSB Announces Final Rules on Appeals Procedures and Requests Public Comment

    WASHINGTON – The National Transportation Safety Board today issued a set of new rules addressing the review of aviation enforcement cases. The changes allow appeals to a federal district court, apply federal rules of evidence and civil procedure to NTSB proceedings and allow parties to move to dismiss a complaint if the FAA fails to disclose its enforcement investigative report.

    The NTSB, in addition to its accident investigation and safety advocacy work, serves as the “court of appeals” for airmen, mechanics and mariners when they appeal FAA or U.S. Coast Guard certificate actions.

    The changes are included in a new final rule and an interim final rule. Although the interim final rule, prompted by the Pilot’s Bill of Rights (P.L. 112-53), is effective immediately, the Board is requesting public comment concerning the changes. The 60-day comment period concludes on Dec. 17. More information on the interim final rule and the comment period can be found at go.usa.gov/YNbm.

    While the interim final rule is being issued as a result of the enactment of P.L. 112-53, the NTSB had been examining its rules of practice and other procedures beginning with an ANPRM published in December 2010 and an NPRM published in February 2012. As a result of that process, the NTSB today also announced it would allow parties to file documents electronically. The final rule is effective Nov. 15 and is available at go.usa.gov/YNjY.

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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.

    src

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    NTSB investigative update on SC GEnx-1B engine failure


    September 27, 2012
    WASHINGTON – This is an update on the NTSB’s investigation into a July 28, 2012 incident involving a Boeing 787-8 airplane that experienced a loss of thrust in the right engine—a General Electric (GE) GEnx-1B turbofan – during a pre-first flight, low-speed taxi test at Charleston International Airport in Charleston, South Carolina. As reported in an earlier update, the investigation found that the forward end of the fan midshaft (FMS) fractured and separated. Examination of other pre-delivery engines revealed a second GEnx-1B engine with a cracked FMS that was installed on a 787-8 airplane that had not yet flown.

    The investigation is ongoing, and an initial inspection of all in-service GEnx engines has been completed. Most recently, on September 11, 2012, a Boeing 747-8F with GE GEnx-2B turbofan engines experienced a loss of power in the No. 1 engine during the takeoff roll at Shanghai Pudong International Airport, Shanghai, China. The Civil Aviation Administration of China (CAAC) is investigating this incident, and the NTSB is participating as the state of design and manufacture of the engine and aircraft. Any investigative updates regarding this incident will be provided by the CAAC.

    As part the CAAC’s investigation and in relation to the NTSB’s ongoing investigation of the July 28th engine failure, preliminary findings from the examination of the Shanghai incident engine revealed that the FMS was intact and showed no indications of cracking. The examination and teardown of that engine is continuing under the direction of the CAAC.

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    Release: NTSB Urges Changes

    The National Transportation Safety Board today issued two urgent safety recommendations to the Federal Aviation Administration (FAA) regarding two recent occurrences in which the fan midshaft on General Electric GEnx-1B engines fractured or exhibited crack indications; and a GEnx -2B incident that appears similar in nature. The recommendations are: (1) Issue an airworthiness directive to require, before further flight, the immediate ultrasonic inspection of the fan midshaft in all GEnx-1B and -2B engines that have not undergone inspection, and (2) Require repetitive inspections of the fan midshaft at a sufficiently short interval that would permit multiple inspections and detection of a crack before it could reach critical length and the fan midshaft fractures.

    On July 28, 2012, the NTSB initiated an investigation of an engine failure that occurred on a Boeing 787 during a pre-delivery taxi test in Charleston, South Carolina. This investigation is ongoing.

    “The parties to our investigation — the FAA, GE and Boeing — have taken many important steps and additional efforts are in progress to ensure that the fleet is inspected properly,” said NTSB Chairman Deborah A.P. Hersman. “We are issuing this recommendation today because of the potential for multiple engine failures on a single aircraft and the urgent need for the FAA to act immediately.”

    In addition, on August 31, 2012, a GEnx-1B engine installed on a Boeing 787 that had not yet flown was found to have an indication of a similar crack on the fan midshaft. The fan midshaft was removed from the engine for further inspection and examination. As a result of the investigative work to date, the NTSB has determined that the fan midshafts on the GEnx engines fractured or cracked at the forward end of the shaft where the retaining nut is installed.

    GE developed a field ultrasonic inspection method to inspect the fan midshaft in the area where the fracture and crack occurred that can be accomplished with the engine still installed on the airplane. To date, all in-service and spare GEnx-1B engines have been inspected. In addition, all GEnx-2B engines on passenger airplanes have been inspected. However, the NTSB is aware of approximately 43 GEnx-2B engines on 747-8F cargo airplanes that have not yet been inspected and is concerned that they are potentially susceptible to a fan midshaft failure.

    More recently, a Boeing 747-8F cargo flight, operated by Air Bridge Cargo, equipped with General Electric GEnx-2B turbofan engines, experienced a loss of power in one of the engines during the takeoff roll in Shanghai, China. The airplane had accelerated through 50 knots when the engine’s low pressure rotor speed dropped. The pilot rejected the takeoff and returned to the ramp. Photographs of the low pressure turbine show damage similar to the GEnx-1B engine from the Charleston incident. The NTSB will continue to coordinate with our investigative counterparts in China.

    Read the Recommendation Letter:

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    NTSB PR: Jim Cash Awarded Sammie

    National Transportation Safety Board’s James Cash has been awarded a Samuel J. Heyman Service to America Medals for career achievement in public service.

    “Jim Cash is a humble and soft-spoken gentleman. But underneath that demeanor, there is a lion-hearted intellectual dedicated to investigation and committed to safety,” said NTSB Chairman Deborah A.P. Hersman. “Through his decades of work, his dogged determination and expertise, Jim has made significant contributions to accident investigations that have yielded the clues that led to important safety improvements. Because of that work, he has long been recognized by his colleagues around the world as a pre-eminent technical expert in accident investigation. He truly exemplifies the best of our NTSB staff and of public service overall. I am honored to work along-side him, to learn from him, and to share his passion and commitment to transportation safety.”

    Cash is the NTSB’s Chief Technical Advisor in the Office of Research and Engineering. He has spent nearly three decades deciphering information from electronic recording devices to help determine the causes of major aviation and other transportation accidents that, in turn, led to recommendations to advance transportation safety for the traveling public. Cash is one of world’s leading experts on cockpit voice recorders and flight data recorders, which help determine the system failures and human errors that cause airplane crashes.

    The Samuel J. Heyman Service to America Medals, or “Sammies,” honor outstanding federal employees. The winners were nominated by colleagues familiar with their work and selected by a committee that includes nearly 20 leaders in government, academia, the private sector, media and philanthropy. More than 400 nominations were submitted for medal consideration this year.

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    NTSB RECOMMENDS SYSTEM FOR LARGE AIRPLANES TO PREVENT COLLISIONS WHILE TAXING


    WASHINGTON – Today the NTSB recommended that the Federal Aviation Administration require that large airplanes be equipped with an anti-ground collision aid, such as an on-board external-mounted camera system, to provide pilots a clear view of the plane’s wingtips while taxing to ensure clearance from other aircraft, vehicles and obstacles.

    On large airplanes (such as the Boeing 747, 757, 767, and 777; the Airbus A380; and the McDonnell Douglas MD-10 and MD-11), the pilot cannot see the airplane’s wingtips from the cockpit unless the pilot opens the cockpit window and extends his or her head out of the window, which is often impractical.

    The NTSB said that the anti-collision aids should be installed on newly manufactured and certificated airplanes and that existing large airplanes should be retrofitted with the equipment.

    “A system that can provide real-time information on wingtip clearance in relation to other obstacles will give pilots of large airplanes an essential tool when taxiing,” said NTSB Chairman Deborah A.P. Hersman. “While collision warning systems are now common in highway vehicles, it is important for the aviation industry to consider their application in large aircraft.”

    The recommendations follow three recent ground collision accidents (all currently under investigation) in which large airplanes collided with another aircraft while taxing:

    • May 30, 2012: The right wingtip of an EVA Air Boeing 747-400 struck the rudder and vertical stabilizer of an American Eagle Embraer 135 while taxing at Chicago’s O’Hare International Airport (Preliminary Report: http://go.usa.gov/rPFh).

    • July 14, 2011: A Delta Air Lines Boeing 767 was taxing for departure when its left winglet struck the horizontal stabilizer of an Atlantic Southeast Airlines Bombardier CRJ900 (Preliminary Report: http://go.usa.gov/rnzC).

    • April 11, 2011: During a taxi for departure, the left wingtip of an Air France A380 struck the horizontal stabilizer and rudder of a Comair Bombardier CRJ701 (Preliminary Report: http://go.usa.gov/rnzW).

    The NTSB made the same recommendation to the European Aviation Safety Agency, which sets standards for aircraft manufacturers in Europe.

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    DETERIORATED PARTS ALLOWED FLUTTER WHICH LED TO FATAL CRASH AT 2011 RENO AIR RACES


    August 27, 2012
    WASHINGTON – The National Transportation Safety Board determined today that deteriorated locknut inserts found in the highly modified North American P-51D airplane that crashed during the 2011 National Championship Air Races in Reno, Nevada, allowed the trim tab attachment screws to become loose, and even initiated fatigue cracking in one screw. This condition, which resulted in reduced stiffness in the elevator trim system, ultimately led to aerodynamic flutter at racing speed that broke the trim tab linkages, resulting in a loss of controllability and the eventual crash.

    On September 16, 2011, as the experimental single-seat P-51D airplane “The Galloping Ghost,” traveling about 445 knots, or 512 mph, in the third lap of the six-lap race, passed pylon 8, it experienced a left-roll upset and high-G pitch up. During the upset sequence, the airplane’s vertical acceleration peaked at 17.3 G, causing incapacitation of the pilot. Seconds later, a section of the left elevator trim tab separated in flight. The airplane descended and impacted the ramp in the spectator box seating area, killing the pilot and 10 spectators and injuring more than 60 others.

    “In Reno, the fine line between observing risk and being impacted by the consequences when something goes wrong was crossed,” said NTSB Chairman Deborah A. P. Hersman. “The pilots understood the risks they assumed; the spectators assumed their safety had been assessed and addressed.”

    Contributing to the accident were the undocumented and untested major modifications made to the airplane, as well as the pilot’s operation of the airplane in the unique air racing environment without adequate flight testing.

    The nearly 70-year-old airplane had undergone numerous undocumented modifications. The modifications, designed to increase speed, included shortening of the wings, installation of a boil-off cooling system for the engine, increasing the elevator counterweights, modification of the pitch trim system, and changing the incidence of the horizontal and vertical stabilizers.

    Although the Federal Aviation Administration required that a flight standards district office be notified in writing of any major changes made to The Galloping Ghost before it could be flown, investigators could find no records that such notifications were made except for the installation of the boil-off cooling system. The undocumented major modifications were identified through wreckage examinations, photographic evidence, and interviews with ground crewmembers.

    In April, while the investigation was ongoing and after the NTSB’s investigative hearing in January on air race and air show safety, the NTSB issued 10 safety recommendations to the Reno Air Racing Association, the National Air racing Group Unlimited Division, and the FAA. These recommendations addressed:

    • requiring engineering evaluations for aircraft with major modifications;
    • raising the level of safety for spectators and personnel near the race course;
    • improving FAA guidance for air race and course design;
    • providing race pilots with high-G training and evaluating the feasibility of G-suit requirements for race pilots; and
    • tracking the resolution of race aircraft discrepancies identified during prerace technical inspections.

    Although no additional safety recommendations were issued today, the Board reclassified nine existing recommendations as described below:

    • Eligibility Requirements for Aircraft with Major Modifications – recommendations A 12 9 and A-12-13 classified “Open—Acceptable Response”
    • Prerace Technical Inspection Discrepancy Tracking – recommendation A 12 10, classified “Closed—Acceptable Action”
    • Spectator Safety – recommendations A 12 14 and 15, classified “Closed—Acceptable Action”
    • High G Training, G-Suit Feasibility for Pilots – recommendations A 12 11, -12, -16, and -17, classified “Closed—Acceptable Action”

    A tenth safety recommendation, issued to the FAA, which addressed air race and course design guidance was reclassified as “Open—Acceptable Response” on July 25, 2012.

    “It’s good news for the air races that so many of our recommendations have been addressed,” said Chairman Hersman. “We will continue to push for the full implementation of all of our safety recommendations.”

  • Press Release: NTSB Opens Docket on Reno Air Race Crash


    AUGUST 21, 2012
    WASHINGTON – As part of its continuing investigation into the September 2011 crash of a highly modified P-51D airplane at the National Championship Air Races in Reno, Nevada, the National Transportation Safety Board has opened the public docket.

    On September 16, 2011, the pilot of the Galloping Ghost experienced an upset while turning between pylons 8 and 9 on the race course. The airplane crashed on the ramp in the box seat spectator area. The pilot and 10 spectators were killed and more than 60 others were injured.

    The information being released today is factual in nature and does not provide any analysis. Included in the docket are photographs, a video, 47 documents and more than 900 pages, including interview summaries, maintenance records and other documents.

    Additional material may be added to the docket as it becomes available. Analysis of the accident, along with a determination of probable cause, will come later this month when the final report on the investigation is completed.

  • UPDATE ON BOEING 787 ENGINE FAILURE IN SOUTH CAROLINA


    August 8, 2012
    WASHINGTON – The National Transportation Safety Board continues its investigation of the July 28, 2012 contained engine failure that occurred on a Boeing 787 Dreamliner during a pre-delivery taxi test in Charleston, South Carolina. A contained engine failure is a specific engine design feature in which components might separate inside the engine but either remain within the engine’s cases or exit the engine through the tail pipe. This design feature generally does not pose immediate safety risks.

    Last week, the NTSB sent an investigator to the scene to gather information on the incident and subsequently launched a full investigation into the cause of the failure, led by NTSB Investigator-in-Charge, Mr. David Helson.

    On August 1, 2012, a team of experts from the NTSB, FAA, Boeing and GE Aviation specializing in engine systems and metallurgy traveled to a GE facility in Cincinnati, OH to disassemble and examine the failed GEnx engine. GE is the manufacturer of the GEnx engine. The parties to the investigation have been extremely cooperative in assisting NTSB personnel in its review and assessment.

    As a result of the investigative work to date, the NTSB has determined that a fan mid-shaft on the failed GEnx engine fractured at the forward end of the shaft, rear of the threads where the retaining nut is installed. The fan mid-shaft is undergoing several detailed examinations including dimensional and metallurgical inspections.

    The GEnx engine is a newly designed aircraft engine. It is a “dual shaft” engine, meaning that one shaft connects the compressor spool at one end to the high pressure turbine spool at the other end. A longer “fan shaft” connects the fan and booster in the front of the engine to the low pressure turbine in the back.

    The cockpit voice recorder and flight data recorder, which is a combined unit on the 787 Dreamliner, was transported to the agency’s Recorders Laboratory in Washington, DC for processing and readout. Both recordings captured the event and analysis is ongoing.

    Moving forward, investigators will continue the detailed examination of the engine and metallurgical analysis of its components. The investigators have also begun reviewing the engine manufacturing and assembly records.

    This investigation is ongoing. The information released today is factual in nature and does not include any analysis. Additional factual information may be released as it is developed.

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    Just Released: Investigation Boeing 787 engine failure


    July 31, 2012
    WASHINGTON – The National Transportation Safety Board is investigating an engine failure that occurred on a Boeing 787 Dreamliner during a taxi test in Charleston, South Carolina.

    On Saturday, July 28, 2012, Boeing and General Electric, the engine manufacturer, notified the NTSB that a Boeing 787 experienced an engine failure during a pre-delivery taxi test. As a result of the failure, it has been reported that the engine left debris on the active runway at Charleston International Airport and caused a brush fire. There were no passengers aboard the aircraft nor were there any fatalities or injuries.

    Upon the notification of the incident, the NTSB sent an aviation investigator with extensive expertise in aircraft powerplants, to the scene on Sunday to gather information to better understand the circumstances of the event.

    As a result, the NTSB decided to conduct an investigation and has named David Helson as the Investigator in Charge. In the next few days, an NTSB aircraft powerplants expert and a metallurgist from the NTSB Materials Lab will travel to a General Electric facility in Cincinnati, OH, to lead and coordinate the disassembly and examination of the engine in question.

    The Federal Aviation Administration, Boeing and General Electric are parties to the investigation.

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    Just Released: NTSB Welcomes Administrative Law Judge


    Washington – Chairman Deborah A.P. Hersman has announced the appointment of Stephen R. Woody as an Administrative Law Judge for the agency.

    Since July 2009, Judge Woody has served as an Administrative Law Judge with the Social Security Administration. Prior to becoming an ALJ, he was a military trial judge in the U.S. Air Force, presiding over all judicial proceedings under the Uniform Code of Military Justice. He also served as a Staff Judge Advocate, and retired from the Air Force with the grade of Colonel.

    The Administrative Law Judges conduct formal hearings and issue initial decisions on appeals filed with the Safety Board relating to air safety enforcement actions by the Federal Aviation Administration (FAA) against pilots and other FAA certificate holders. Administrative Law Judges’ initial decisions can be appealed to the NTSB. The Board, in turn, takes final administrative action on appeals and issues decisions affirming, modifying or reversing judges’ decisions, or remanding cases to the judge for further proceedings.

    Judge Woody will primarily be responsible for hearing cases in the Office of Administrative Law Judges’ Northeast Circuit (Connecticut, Delaware, District of Columbia, Indiana, Maine, Maryland, Massachusetts, Michigan, New Hampshire, New Jersey, New York, Ohio, Pennsylvania, Rhode Island, Vermont, and Virginia). Judge Woody is a graduate of West Virginia University and earned his law degree at the West Virginia University College of Law.

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    NTSB TO PARTICIPATE IN Oshkosh AVIATION EVENT

    July 20, 2012
    WASHINGTON – Next week senior investigators from the National Transportation Safety Board will provide 20 presentations on a variety of aviation safety issues at AirVenture 2012, the Experimental Aircraft Association’s annual fly-in convention in Oshkosh, Wisconsin.

    The NTSB has added new emphasis to general aviation as a safety advocacy priority. Last year general aviation safety was added to the NTSB’s Most Wanted List of Safety Improvements. And earlier this year, the NTSB released its first-ever safety study on experimental amateur-built (E-AB) aircraft. In just the past few months, the Safety Board held two general aviation safety forums. Every year, more than 1,500 general aviation accidents occur resulting in the deaths of about 450 individuals. The NTSB is concerned that these numbers have remained stagnant over the past decade.

    “In Oshkosh, we’ll have tremendous opportunities to share lessons learned from our investigations with an enthusiastic aviation community,” said NTSB Chairman Deborah A.P. Hersman. “In particular, we’re look forward to interacting with experimental aircraft builders to relay the findings and recommendations from our E-AB safety study.”


    Investigators will discuss the study and other safety issues, including aeronautical decision making, weather flying, and accident case studies. They will also meet with members of the public who visit the NTSB exhibit in the Federal Pavilion.

    Media requests for interviews with one of the Board members or investigators should be emailed to NTSB press officer Peter Knudson.

    For a schedule of NTSB presentations at AirVenture 2012 as well as links to online resources, including a summary of the E-AB safety study, go to http://go.usa.gov/fI6

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    NTSB Safety Recommendation


    The National Transportation Safety Board makes the following recommendations to the Federal Aviation Administration:

    Require that Avions de Transport Régional (ATR)42-seriesairplanes operating in the United States incorporate a revised stickpusher activation angle of attack(AOA), such that the stick pusher activates before the stall AOA in the presence of airframe ice accretions. (A-12-24)

    Evaluate all U.S.-certificated transport-category airplanes equipped with stick pushers to ensure that the stick pusher
    activates at an angle of attack that will provide adequate stall protection in the presence of airframe ice accretions.(A-12-25)