NTSB

National Transportation Safety Board

  • NTSN Lists Top 10 Leading Causes of Fatal General Aviation Accidents 2001-2011

    The Top 10 Leading Causes of Fatal General Aviation Accidents 2001-2011
    1. Loss of Control Inflight
    2. Controlled Flight Into Terrain
    3. System Component Failure – Powerplant
    4. Low Altitude Operations
    5. Unknown or Undetermined
    6. Other
    7. Fuel Related
    8. System Component Failure – Non-Powerplant
    9. Midair Collisions
    10. Windshear or Thunderstorm

  • |

    NTSB Warns Old Weather Data on Pilot Displays Can Contribute to Plane Crashes

    The NTSB has sent out a safety alert concerning weather information that is up to twenty minutes old, although it may be advertised as real time data. The discrepancy in time can be fatal when weather conditions are in rapid flux. The NTSB has related this old weather information to two recent crashes that occurred at night:

    • March 2010 med-evac helicopter Tennessee crash where the pilot was racing to home base trying to beat a storm
    • December 2011 Piper PA-32 Bryan Texas where the plane broke up in stormy weather.

    In both these crashes, “the time stamps indicated the one-minute time interval used to create the image, and not the actual age of the data used to create the image.”

    The Tennessee crash involved information five minutes old; the Texas crash involved information six to eight minutes old.

    The night crashes in particular are affected by old data. Pilots need to be aware that the data can be old, and not use the weather display to navigate around bad weather.

  • | | | | |

    NTSB Investigation Arrives in Lagos


    Click to view full size photo at Airliners.net
    Contact photographer Peter Tonna

    What: Dana Air McDonnell Douglas MD-83 en route from Abuja to Lagos, Nigeria
    Where: Iju neighborhood, Lagos
    When: June 3, 2012
    Who: 153 passengers
    Why: The plane crashed after experiencing failure in both engines.

    The black boxes were sent last week to the US, and now the US has sent US National Transportation Safety Board investigators to assist Nigeria’s AIB in the investigation.

    According to Governor Godswill Akpabio of Akwa Ibom, prior to the accident, there had been complaints of Dana Air and he had warned them to maintain or suspend flights and to check its fleet.

    The NTSB published the following release:
    The NTSB is dispatching an investigator to assist the government of Nigeria in its investigation of the crash of a Dana Air Boeing MD-83 airplane, Flight # 0992.

    On June 3, 2012 at about 11:51 a.m. local time, the airplane, en route from Abuja to Lagos Nigeria, crashed outside the airport into a two story building. All 153 passengers and crew onboard were fatally injured, and an undetermined number of ground fatalities and injuries also occurred.

    As the state of design and manufacture of the Boeing MD-83, the NTSB has designated Senior Aviation Accident Investigator, Mr. Dennis Jones, as the traveling U.S. Accredited Representative. Mr. Jones will be assisted from NTSB headquarters by investigative staff specializing in operational factors, powerplants, and airworthiness as well as advisors from the Federal Aviation Administration (FAA), Boeing, and Pratt & Whitney.

    The investigation is being conducted by the Nigerian Accident Investigation Bureau, which will release all information.

    Questions follow Dana Air
    Dana Air Semantic Wars
    Husband Files Dana Air Flight 992 Lawsuit
    Dana Air’s license Suspended
    Witnesses of the Dana Air Crash Recount What they Saw
    First Report of Dana Air Crash in Lagos
    IDENTIFICATION
    Regis#: DANA992 Make/Model: MD80 Description: MD-81/82/83/87/88
    Date: 06/03/2012 Time: 1530

    Event Type: Accident Highest Injury: Fatal Mid Air: N Missing: N
    Damage: Destroyed

    LOCATION

    DESCRIPTION
    DANA AIR FLIGHT 992 BOEING MCDONNELL DOUGLAS MD83 AIRCRAFT CRASHED INTO A 2-STORY BUILDING IN A RESIDENTIAL AREA,153 PERSONS ON BOARD WERE FATALLY INJURED, UNKNOWN GROUND INJURIES, LAGOS, NIGERIA

    INJURY DATA Total Fatal: 153
    # Crew: 6 Fat: 6
    # Pass: 147 Fat: 147

    OTHER DATA
    Activity: Business Phase: Unknown Operation: Air Carrier

  • | |

    NTSB Assisting Dana Air Crash Investigation


    The NTSB is dispatching an investigator to assist the government of Nigeria in its investigation of the crash of a Dana Air Boeing MD-83 airplane, Flight # 0992.

    On June 3, 2012 at about 11:51 a.m. local time, the airplane, en route from Abuja to Lagos Nigeria, crashed outside the airport into a two story building. All 153 passengers and crew onboard were fatally injured, and an undetermined number of ground fatalities and injuries also occurred.

    As the state of design and manufacture of the Boeing MD-83, the NTSB has designated Senior Aviation Accident Investigator, Mr. Dennis Jones, as the traveling U.S. Accredited Representative. Mr. Jones will be assisted from NTSB headquarters by investigative staff specializing in operational factors, powerplants, and airworthiness as well as advisors from the Federal Aviation Administration (FAA), Boeing, and Pratt & Whitney.

    The investigation is being conducted by the Nigerian Accident Investigation Bureau.

  • |

    NTSB To Meet over Jackson Hole Airport Incident

    WASHINGTON, D.C. – The National Transportation Safety Board (NTSB) will hold a meeting to determine the probable cause and consider safety recommendations for a highway collision and an aviation incident.
    The first item the Board will discuss will be the March 12, 2011, crash in New York City of a World Wide Tours-operated motorcoach. Fifteen passengers died in the collision.
    The second item is a December 29, 2010, incident in which an American Airlines B-757 ran off the departure end of the runway into deep snow after landing at Wyoming’s Jackson Hole Airport. None of the 185 passengers and crew onboard were injured; the aircraft sustained minor damage.
    Event: Board Meeting
    Date/Time: Tuesday, June 5, 9:30 a.m. (ET)
    Location: NTSB Board Room and Conference Center, 429 L’Enfant Plaza SW, Washington, DC
    Participants: NTSB Board Members

  • |

    New head of NTSB Aviation Safety


    National Transportation Safety Board Chairman Deborah A. P. Hersman announced the selection of John DeLisi as the new Director of the Office of Aviation Safety (OAS). Mr. DeLisi will assume his new position on June 2, 2012 following the retirement of Tom Haueter, the current director.

    “It gives me great pleasure to announce John’s selection to lead OAS,” said Chairman Hersman. “With more than two decades of outstanding accident investigation experience, John has made significant contributions to safety and to the NTSB. I look forward to continuing to work with him to further improve the safety of air travel.”

    DeLisi has been serving as the Deputy Director of OAS since 2007. During his 20 years with the NTSB, he has overseen numerous major investigations, including the January 2009 ditching of US Airways flight 1549 in the Hudson River and the February 2009 Colgan Air accident in Buffalo, New York.

    Beginning as an Aircraft Systems Engineer, DeLisi has been an on-scene investigator for 20 major domestic aviation accidents and 6 international investigations. And later serving as the Chief of the Major Investigations Division for the NTSB, he oversaw the development of more than a dozen other major airline accident investigations, including the investigation of the August 2006 Comair flight 5191 accident in Lexington, Kentucky.

    DeLisi is a cum laude graduate of the University of Michigan with a degree in Aerospace Engineering, and has done graduate work in Engineering Management at Washington University in St. Louis, Missouri. He holds a private pilot certificate.

    Haueter, who is retiring after 28 years of Federal service, has served the NTSB as a technical expert in charge of major accidents and as an ambassador for aviation safety all over the world. His portfolio of investigative work has encompassed everything from small general aviation crashes to some of our nation’s largest and most complex accidents involving major air carriers.

  • |

    NTSB to Present Findings of Safety Study


    The National Transportation Safety Board will hold a Board meeting on May 22, 2012, to consider the findings of a draft safety study on experimental amateur-built (E-AB) aircraft.

    Of the approximately 224,000 general aviation (GA) aircraft in the U.S., about 33,000 of them are classified as E-AB. This includes a wide variety of aircraft, which can be built from a prefabricated kit, existing plans, or a builder’s unique design. Unfortunately, this group of aircraft has, for several years, experienced accident rates greater than those of other comparable segments of GA.

    The NTSB, with the assistance and input from the Experimental Aircraft Association (EAA) and its many members, undertook the study to identify areas that could be addressed to improve the safety record of this growing and innovative segment of GA.

    The meeting will be webcast live at bit.ly/fzFiOW

    Event: Board Meeting

    Date/Time: Tuesday, May 22, 2012, 9:30 am (EST)

  • |

    NTSB Safety Recommendations

    National Transportation Safety Board
    Washington, DC 20594

    April 10, 2012

    The National Transportation Safety Board makes the following
    recommendations to the Reno Air Racing Association:

    Require aircraft owners, as a condition of eligibility to
    participate in the Reno National Championship Air Races, to
    provide an engineering evaluation that includes flight
    demonstrations and analysis within the anticipated flight
    envelope for aircraft with any major modification, such as
    to the structure or flight controls. (A-12-13)

    Evaluate the design of the unlimited class course and safety
    areas to minimize maneuvering near and potential conflicts
    with spectators; if warranted by the results of the
    evaluation, implement changes to the race course. (A-12-14)

    Take the following actions to raise the level of safety for
    spectators and personnel near the race course: (1) relocate
    the fuel truck away from the ramp area and (2) in front of
    any area where spectators are present, install barriers more
    substantial than those currently in place. (A-12-15)

    Provide high g training to pilots, including techniques to
    mitigate the potential effects of high g exposure, as part
    of preparations before the Reno National Championship Air
    Races (NCAR) and during daily briefs at the NCAR. (A-12-16)

    Evaluate the feasibility of requiring pilots to wear g suits
    when racing at the Reno National Championship Air Races; if
    the evaluation determines it is feasible, implement a
    requirement. (A-12-17)

  • | |

    NTSB Safety Recommendation A-12-7


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

    Require repetitive inspection of Engine Components, Inc. cylinder assemblies produced between May 2003 and October 2009 (serial numbers 7709 through 52884) installed on Teledyne Continental Motors model 520 and 550 engines and removal of these cylinder assemblies once they reach the engine manufacturer’s recommended normal time (hours) in service between overhauls. (A-12-7)

  • |

    NTSB Recommendations

    National Transportation Safety Board
    Washington, DC 20594
    February 23, 2012

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

    Modify the design and test requirements for the attachment points of passenger service units to account for the higher localized loading that results from the relative motion of the attachment structure. (A-12-1)

    Require that the installation design for overhead bins and passenger service units (PSU) manufactured by Boeing and installed in Boeing 737NG series airplanes be modified so that the PSUs remain attached to the bins or are captured in a safe manner during survivable accidents. (A-12-2)

    Review the designs of manufacturers other than Boeing for overhead bins and passenger service units (PSU) to identify designs with deficiencies similar to those identified in Boeing’s design, and require those manufacturers, as necessary, to eliminate the potential for PSUs to separate from their attachments during survivable accidents. (A-12-3)

    Develop test criteria and performance measures for negative-g strap assemblies to better evaluate their real-world loading capability during accident sequences. (A-12-4)

    Once test criteria and performance measures are established as recommended in Safety Recommendation A-12-4, amend 14 Code of Federal Regulations Part 25, as appropriate, to include the newly developed test criteria and performance measures for negative-g strap assemblies. (A-12-5)

    Require that negative-g strap attachment brackets manufactured by Ipeco be retrofitted with stronger brackets. (A-12-6)

    ************************************************************

    The National Transportation Safety Board recommends that the Federal Aviation Administration:

    Require Boeing to develop a method to protect the elevator power control unit input arm assembly on 737-300 through -500 series airplanes from foreign object debris. (A-11-7)

    Once Boeing has developed a method to protect the elevator power control unit input arm assembly on 737-300 through -500 series airplanes from foreign object debris as requested in Safety Recommendation A-11-7, require operators to modify their airplanes with this method of protection. (A-11-8)

    Require Boeing to redesign the 737-300 through -500 series airplane elevator control system such that a single-point jam will not restrict the movement of the elevator control system and prevent continued safe flight and landing. (A-11-9)

    Once the 737-300 through -500 series airplane elevator control system is redesigned as requested in Safety Recommendation A-11-9, require operators to implement the new design. (A-11-10)

    Require Boeing to develop recovery strategies (for example, checklists, procedures, or memory items) for pilots of 737 airplanes that do not have a mechanical override feature for a jammed elevator in the event of a full control deflection of the elevator system and incorporate those strategies into pilot guidance. Within those recovery strategies, the consequences of removing all hydraulic power to the airplane as a response to any uncommanded control surface should be clarified. (A-11-11)

  • |

    NTSB ISSUES NPRM TO REVISE RULES ON ENFORCEMENT APPEALS

    The NTSB proposes various amendments to regulations, which sets forth rules of procedure for the NTSB’s review of certificate actions taken by the Federal Aviation Administration (FAA); and rules of procedure concerning applications for fees and expenses under the Equal Access to Justice Act of 1980 (EAJA).

    The NTSB previously issued an advance notice of proposed rulemaking (ANPRM) and has carefully considered comments submitted in response to the ANPRM concerning these procedural rules. This document contains both a discussion of the comments and explanations for the changes proposed.

    Comments should be identified with Docket ID Number NTSB– GC–2011–0001
    Federal eRulemaking Portal: Go to http://www.regulations.gov and follow the instructions for sending your comments electronically.

  • | |

    NTSB COMPLETES DATA COLLECTION FOR EXPERIMENTAL- AMATEUR-BUILT AIRCRAFT ACCIDENT Study

    National Transportation Safety Board
    Washington, DC 20594

    Throughout the 2011 calendar year, the NationalTransportation Safety Board has been conducting a study ofExperimental Amateur-Built (E-AB) aircraft to evaluate thesafety of this growing and innovative segment of general aviation. In addition to using the information gathered during its accident investigations, the NTSB has been working with the Federal Aviation Administration (FAA), the Experimental Aircraft Association (EAA), and individual owners and builders to evaluate a range of issues unique to this popular segment of general aviation.

    “The cooperation we have received from EAA and the E-AB community has been tremendous,” said NTSB Chairman Deborah A.P Hersman. “Through this study, we hope that we’ll be ableto give the innovators and aviators in the community
    information about accidents that will result in a real and immediate safety payoff for them when they are flying these aircraft.”

    As part of the study, NTSB investigators have conducted in-depth investigations of 222 E-AB aircraft accidents that occurred during 2011. Fifty-four of these accidents resulted in 67 fatalities. Most of these accidents (93%) involved
    amateur-built airplanes, the remaining accidents involved gyroplanes (4%), helicopters (2%), and gliders (1%). These accidents occurred in 44 states, with California (18 accidents), Texas (16 accidents), and Florida (14 accidents)
    accounting for the most. More than half (53%) of the E-AB accidents investigated in 2011 involved E-AB aircraft that were bought used, as opposed to having been built by the current owner.

    The EAA has supported the study by conducting a web-based survey of E-AB owners and builders. More than 5,000 E-AB owners and builders responded to EAA’s survey, and 4,923 of these responses were sufficiently complete to use in
    analyses. Most respondents (97%) described E-AB airplanes, while gliders, gyrocopters, and helicopters were each described by slightly less than 1% of the respondents. Sixty-three percent of respondents had already built their
    E-AB aircraft, 13% were currently building their E-AB aircraft, and nearly 24% had bought used E-AB aircraft. More than 340 distinct makes of amateur-built aircraft were reported, although kit manufacturers accounted for more than 55% of the reported aircraft.

    “The NTSB is extremely pleased with the number of respondents who participated in the survey,” said Dr. Joseph Kolly, Director of the Office of Research and Engineering. “The survey data provides us with quantifiable, factual
    information that enriches our understanding of how E-AB aircraft are built and operated.”

    The safety study is scheduled to be completed in the spring of 2012.

  • |

    Press Release from NTSB on Air Show Safety


    NTSB to Hold Public Hearing on Air Race and Air Show Safety
    December 2, 2011

    The National Transportation Safety Board (NTSB) is holding a hearing on air race and air show safety. The hearing will be chaired by NTSB Chairman Deborah A.P. Hersman, and all five Board members will participate. During the one-day meeting, the Board will gather information on the safety regulations and oversight in the planning and execution of these events. Regulators, aviation organizations, industry groups, and airport authorities will be questioned by the Board about safety practices, procedures, and protocols.

    Event: Air Race and Air Show Safety Hearing

    Date/Time: January 10, 2012 9:30 a.m. (EST)

    Location: NTSB Board Room and Conference Center , 429 L’Enfant Plaza SW, Washington, DC

    Participants: NTSB five-member Board

    * The forum’s agenda and participants will be announced in a future press release.

  • |

    Letter to Pinnacle from Hersman, NTSB


    Two weeks ago, we were disappointed to learn of internal documents released by Pinnacle Airlines Corp., parent company of Colgan Air, that were not provided to the NTSB during the course of our investigation into the February 12, 2009, crash of Colgan Air Flight 3407. The NTSB investigation began immediately after the crash and concluded with a public meeting on February 2, 2010.

    Today, in a letter to Pinnacle Airlines Corp., the NTSB requested that the company make available any and all information regarding the training and technical qualifications of the Captain and First Officer on-board Flight 3407.

    While the content of the newly released email exchanges appears to be consistent with information our investigators learned through other means during the course of the investigation, it is critical that the factual record of this accident be complete. The previously undisclosed documents do not appear to give reason for reconsideration of the NTSB’s final report and probable cause determination.

    https://airflightdisaster.com/wp-content/uploads/2011/11/Demand_Letter_Pinnacle_110911.pdf

  • |

    NTSB Launches Reno Investigation

    National Transportation Safety Board
    Washington, DC 20594
    September 17, 2011

    NTSB LAUNCHES TEAM TO AVIATION ACCIDENT IN RENO, NEVADA

    Washington, DC – The National Transportation Safety Board islaunching a Go-Team to an aviation accident that occurred yesterday afternoon at the Reno Air Race in Reno, Nevada.

    Howard Plagens will serve as the Investigator-in-Charge of the team. NTSB Board Member Mark Rosekind is accompanying
    the team and will serve as the principal spokesman during the on-scene phase of the investigation.

    Public Affairs Officer Terry Williams is also accompanying the team; he can be reached on-scene at 202-557-1350.

  • |

    NTSB Opens Public Docket on 2010 American Airlines Fuselage Rupture and Decompression

    WASHINGTON – As part of the continuing investigation into the 2010 rapid decompression that occurred following a fuselage rupture aboard an American Airlines flight shortly after departing Miami, Florida, today the National Transportation Safety Board (NTSB) opened its public docket.

    On October 26, 2010, American Airlines flight 1640, a Boeing 757-223, while climbing through 32,000 feet, experienced a rapid decompression. The crew executed an emergency descent back to Miami International Airport and landed the aircraft without further incident. There were no injuries to the 6 crewmembers and 154 passengers.

    A ground inspection of the airplane shortly after it landed in Miami revealed a section of the fuselage crown skin, measuring approximately 18 inches by 7 inches, had ruptured just above and aft of the forward left passenger door.

    Included in the documents released today are a summary of the cockpit voice recorder and reports from the metallurgy and airworthiness groups.

    The information contained in the docket is factual in nature and does not provide any analysis.

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

  • NTSB TO OFFER TRAINING ON EMERGENCY COMMUNICATIONS INVOLVED IN MAJOR AIRCRAFT ACCIDENTS AND INCIDENTS

    The National Transportation Safety Board is devoting two days at its Training Center to offer guidance to aviation public affairs professionals on how to most effectively manage emergency communications following a major aircraft accident or incident.

    The training will be offered on October 13-14, 2011, at the NTSB Training Center in Ashburn, Virginia, (near Washington, D.C.) and is aimed at communications professionals working with airports, airlines and corporations with aviation departments.

    Representatives from the NTSB Office of Public Affairs will explain the process by which investigation-related information is verified and released to the news media and the family members of those affected by a major accident.

    Members of the national news media will be there to discuss how previous accidents have been covered and to talk about how social media is changing how breaking news is disseminated and consumed. Airport and airline communications professionals will provide case studies on how communications during previous aircraft incidents and accidents were handled.

    Those interested in learning more should see the complete description of the training, registration information, and cost to attend at: http://go.usa.gov/KGO

    A one-day version of this course is also available outside of Washington for groups of 10 or more. For details, see the course description at: http://go.usa.gov/KGc

  • |

    NTSB Chairman Deborah A.P. Hersman Sworn in Second Term

    WASHINGTON – Deborah Hersman was officially sworn in today for a second two-year term as NTSB chairman. She became chairman on July 28, 2009. She was nominated for the second term by President Barack Obama on June 28, 2011, and confirmed by the U.S. Senate on August 2, 2011.

    “I am deeply honored to continue serving as chairman of the NTSB,” Hersman said. “It has been a privilege to lead this remarkable organization with its dedicated and professional employees. I look forward to continuing to work with my fellow board members and the staff to make transportation safer for our citizens.”

    Her term as chairman ends on August 3, 2013. She is concurrently serving a second five-year term as board member, which runs through December 31, 2013.

  • | | | | |

    NTSB launches team to assist government of Guyana in aviation accident

    Washington – The National Transportation Safety Board launched a team of investigators today to assist the government of Guyana with its investigation into yesterday’s accident at Cheddi Jagan International Airport, Georgetown, Guyana, involving a scheduled passenger flight.

    On July 30, 2011, at approximately 1:25 am (EDT), Caribbean Airlines flight 523, (Trinidad & Tobago registration 9Y-PBM), en route from Trinidad to Guyana, overran the runway during landing at Cheddi Jagan International Airport in Guyana. Preliminary information from the Guyana Civil Aviation Authority (CAA) indicated that one serious and multiple minor injuries were reported aboard the Boeing 737-800, carrying 156 passengers and six crewmembers.

    The NTSB designated Bob Benzon as the U.S. Accredited Representative. He will lead the U.S. team, which includes seven NTSB staff with expertise in operations, meteorology, airworthiness, survival factors, and aircraft performance as well as representatives from the Federal Aviation Administration and Boeing. The team is scheduled to arrive in Guyana this evening.

    The Guyana CAA is leading the accident investigation. The accident aircraft recorders have been recovered and, at the request of the CAA, will be transported to NTSB headquarters in Washington, DC to be downloaded.

  • | |

    NTSB Photo Opportunity with Caribbean Black Boxes

    WASHINGTON – The National Transportation Safety Board will hold a
    photo availability on Tuesday, August 2, 2011 of the flight data recorder
    and cockpit voice recorder from Caribbean Airlines flight 523, which
    crashed during landing on Saturday July 30, 2011 in Georgetown,
    Guyana.
    Event: Photo Availability

    Date/Time: Tuesday, August 2, 2011 at 11:30 a.m. (EDT)

    Location: NTSB Headquarters
    6th Floor
    490 L’Enfant Plaza SW, Washington, DC, 20594

    Note: This is a photo availability only – no interviews will be conducted.
    Guyana’s Civil Aviation Authority is leading the investigation.

  • | | | | | | |

    Southwest In the News

    Click to see video
    Southwest just reported that El Paso-Phoenix jet that landed at 9:30 p.m. in Phoenix with one engine did so because of an engine exhaust problem. Good for them for catching it.

    This was certainly less of an issue that the April 1 2011 surprise, the fuselage rupture in the roof of the Southwest Phoenex-Sacramento flight. That fifteen year old plane lost pressure (kind of a given, one would think, with a huge hole in the roof) and had to make an emergency landing in Yuma, 150 miles southwest of Phoenix. There were no injuries except to Southwest’s reputation.

    On April 4, the FAA sent out a letter mandating operators of specific early Boeing 737 models to conduct initial and repetitive electromagnetic inspections for fatigue damage.

    The NTSB is investigating. And all of the onus is not on Southwest–it’s also on Boeing, as they examine that

    Southwest is a busy airline operator. The stats of take offs and landing every 24 hours must be staggering. Their 737s are renowned workhorses that don’t tire, but they have to be taking a beating.

    Let’s not wait for something terrible to happen. Let’s double on maintenance. Let’s do the footwork to prevent another metal fatigue occurrence to happen again, busting a hole in the fuselage at 36,000 feet.

    Audio, Documents Detailing Southwest Emergency Released: MyFoxPHOENIX.com

  • |

    Series of Operational Errors by Pilot Led to 2009 Airplane Crash in Montana

    The National Transportation Safety Board determined today that the cause of the March 2009 deadly crash of a Pilatus airplane was a series of operational errors made by the pilot. The pilot failed to ensure that a fuel system icing inhibitor (FSII), commonly referenced by the brand name “Prist”, was added to the fuel prior to the accident flight.

    The pilot also failed to take appropriate remedial actions, including diverting to a suitable airport, after the airplane warning systems indicated a low fuel pressure state that ultimately resulted in a significant lateral fuel imbalance. And, the pilot lost control while maneuvering the left-wing heavy airplane near the approach end of the runway.

    “The pilot’s pattern of poor decision making set in motion a series of events that culminated in the deadly crash,” said NTSB Chairman Deborah A. P. Hersman. “Humans will make mistakes, but that is why following procedures, using checklists and always ensuring that a safety margin exists are so essential – aviation is not forgiving when it comes to errors.”

    On March 22, 2009, at about 2:32 pm (MDT), a Pilatus PC-12/45, N128CM, crashed about 2,100 feet west of runway 33 at Bert Mooney Airport (BTM) in Butte, Montana. The flight departed Oroville Municipal Airport in Oroville, California, en route to Gallatin Field in Bozeman, Montana but the pilot diverted to Butte for unknown reasons. The pilot and the 13 passengers were fatally injured and the aircraft was substantially damaged by impact forces and a post-crash fire. The airplane was owned by Eagle Cap Leasing of Enterprise, Oregon, and was operating as a personal flight under the provisions of 14 Code of Federal Regulations Part 91. Visual meteorological conditions prevailed at the time of the accident.

    During the investigation, the NTSB determined that the pilot did not add a fuel system icing inhibitor when the airplane was fueled on the day of the accident. The Pilatus flight manual states that a fuel system icing inhibitor must be used for all flight operations in ambient temperatures below 0 degrees Celsius to prevent ice formation in the fuel system. The NTSB concluded that the airplane experienced icing in the fuel system which resulted in a left-wing-heavy fuel imbalance. The increasing fuel level in the left tank and the depletion of the fuel from the right tank should have been apparent to the pilot because that information was presented on the fuel quantity indicator. This should have prompted the pilot to divert the airplane to an airport earlier in the flight as specified by the airplane manufacturer.

    The NTSB issued recommendations to the Federal Aviation Administration and the European Aviation Safety Agency, to require fuel filler placards and guidance on fuel system icing prevention.

  • | | |

    Luddington Crash Report Posted: Debris in Fuel

    TSB Identification: CEN10FA465
    14 CFR Part 91: General Aviation
    Accident occurred Friday, July 23, 2010 in Ludington, MI
    Aircraft: CESSNA U206F, registration: N82531
    Injuries: 4 Fatal,1 Minor.

    On July 23, 2010, at 1017 eastern daylight time (edt), a Cessna U206F, N82531, sustained substantial damage when it was ditched in Lake Michigan about 5 miles west of Ludington, Michigan, after a loss of engine power. The airplane was owned and operated by the pilot as a personal flight under 14 Code of Federal Regulations Part 91. It departed the Gratiot Community Airport (AMN), Alma, Michigan, at 0850 and was en route to Rochester International Airport (RST), Rochester, Minnesota. The single-engine airplane was over Lake Michigan at 10,000 feet above mean sea level (msl) when the engine lost power. The pilot reversed course but was unable to reach the shore, and he ditched the airplane. The pilot survived and was rescued by a fishing boat about 38 minutes later. The pilot rated passenger and three other passengers did not survive. Visual meteorological conditions prevailed at the time of the accident. An instrument flight rules (IFR) flight plan was activated.

    (Full)
    HISTORY OF FLIGHT

    On July 23, 2010, at 1017 eastern daylight time (edt), a Cessna U206F, N82531, sustained substantial damage when it was ditched in Lake Michigan about 5 miles west of Ludington, Michigan, after a loss of engine power. The airplane was owned and operated by the pilot as a personal flight under 14 Code of Federal Regulations Part 91. It departed the Gratiot Community Airport (AMN), Alma, Michigan, at 0850 and was en route to Rochester International Airport (RST), Rochester, Minnesota. The single-engine airplane was over Lake Michigan at 10,000 feet above mean sea level (msl) when the engine lost power. The pilot reversed course but was unable to reach the shore, and he ditched the airplane. The pilot survived and was rescued by a fishing boat about 38 minutes later. The pilot rated passenger and three other passengers did not survive. Visual meteorological conditions prevailed at the time of the accident. An instrument flight rules (IFR) flight plan was activated.

    On July 23, 2010, about 0659, the pilot rated passenger called the Princeton Automated Flight Service Station to obtain a weather brief and to file an IFR flight plan. The briefer informed him that there was an airmen’s meteorological information (AIRMET) for IFR conditions for the entire route of flight that was valid until about 1100 – 1400. There was a Convective significant meteorological information (SIGMET) to the south that paralleled the route of flight. The briefer reported that the winds aloft were from 260 degrees at 41 knots at 9,000 feet, and 270 degrees at 35 knots at 12,000 feet. The pilot rated passenger filed the flight plan and identified the flight as a “lifeguard” flight.

    The pilot reported that the purpose of the flight was to take one of the passengers to the Mayo Clinic in Rochester, Minnesota, for medical treatments. The flight was a personal flight and was not associated with a charity organization. The patient and his wife were seated in the aft seats, seats 5 and 6. The patient’s doctor was sitting in the middle row on the left in seat 3. The pilot was in the left front seat and the pilot rated passenger was in the right front seat, seat 2. The fuel tanks were filled to capacity the night before the flight. The pilot reported that after climbing to 10,000 feet msl, he leaned the fuel mixture to approximately 14 gallons per hour (gph).

    The pilot reported that all of the instrument readings were within normal limits as they crossed the shore near Ludington, Michigan. The head winds were about 40 knots “directly on the nose.” Near mid-point over the lake (about 24 statute miles from the shoreline), the engine began to misfire and lose power, with the fuel flow dropping to about 11 gph. The pilot attempted to regain power by pushing in the mixture control to full rich but without effect. About 1005, the pilot contacted the Minneapolis Air Route Traffic Control Center (ARTCC) and reported that the airplane was losing power. He reversed course toward the Michigan shoreline. The fuel flow dropped to about 8 gph. The pilot switched fuel tanks and adjusted the mixture control in and out to try to regain power. He attempted to prime the engine but that had no effect. He reported that he turned on the high boost pump and got a short burst of power for about 30 – 45 seconds, but then the engine “failed completely.”

    The airplane descended through a cloud layer. About 1012, the airplane was about 12 miles from Ludington and about 2,300 feet above mean sea level (msl) and the airplane was still in the clouds. The surface weather at Ludington indicated that the cloud bases were at 1,800 feet msl. The pilot reported that they had a few minutes before water impact after breaking out of the clouds, so he had everyone don and inflate their life vests. Before impact, the pilot unlatched the pilot’s door on the left side of the airplane, and he had the front door of the rear cargo door unlatched. The pilot reported that he did not lower the flaps since the cargo doors would not open if the flaps were extended.

    The pilot reported that when he ditched the airplane, either the tail or the landing gear hit the water as he pulled up to go over a swell. The airplane pitched forward, flipped over on its back, and began to fill with water. The pilot unbuckled his seat belt and shoulder harness, fell a short distance, pushed the door open, and got out. He reported that the airplane was sinking rapidly. He saw the right seat passenger and the doctor in the water. A wave hit the pilot and when he resurfaced “everything was gone.” He kept yelling but got no response. He eventually started to swim toward the shoreline. About 30 minutes later a US Coast Guard helicopter flew over him but they did not spot him. A few minutes later a fishing boat spotted him and rescued him from the water. He was transferred to a Coast Guard vessel and was taken to shore.

    Using side scanning sonar, the Michigan State Police Dive Team located the airplane in about 173 feet of water on July 30. The dive team recovered all the bodies, with the last body being recovered on the morning of August 1, 2010.

    The airplane was found resting on its main landing gear on the sandy lake bottom. The airframe and engine were separated by the water impact. Both were raised to the surface by a local commercial recovery service on August 1, 2010. The airframe and engine were taken to a local facility where the National Transportation Safety Board (NTSB) conducted its on-site investigation.

    PERSONNEL INFORMATION

    The 66-year-old pilot held a private pilot certificate with a single-engine land and airplane instrument ratings. He reported that he had 2,660 total flight hours with 1,200 hours in a Cessna 206. He had logged 25 hours of flight time in the last 90 days, and 7 hours in the last 30 days. He held a third-class medical certificate that was issued in November 2008.

    The pilot reported that he had flown similar “lifeguard” flights in the airplane with the pilot rated passenger in the past. He reported that the pilot rated passenger performed copilot duties when he flew with him. The pilot rated passenger also owned an airplane. When they flew in the pilot rated passenger’s airplane, the accident pilot would perform copilot duties.

    The 70-year-old pilot rated passenger held a private pilot certificate with a single-engine land and airplane instrument ratings. He held a third-class medical certificate that was issued on November 17, 2009. He had 2,150 hours of total flight time at the time of his medical examination.

    AIRCRAFT INFORMATION

    The airplane was a single-engine Cessna U206F, serial number U-206-01734, manufactured in 1972. It was designed to seat six and it had a maximum gross weight of 3,600 pounds. The airplane was equipped with a pilot (left) side door and a clamshell rear door serving the back two rows of seats. The accident airplane had its middle, right seat (Seat 4) removed. The engine was a 300-horsepower Continental IO-520-F3B, serial number 280171R.

    Annual Inspections
    The airplane’s maintenance logbooks indicated that four different inspection authorization (IA) mechanics had conducted the required annual maintenance inspections on the airplane within the last ten years. The logbooks indicated that the same IA mechanic had performed the last three annual maintenance inspections. On September 27, 2007, the IA mechanic performed his first annual maintenance inspection of the airplane. The total airframe time was 3,893.4 hours. His second annual inspection of the airplane was conducted on October 1, 2008, and the airplane had a total time of 3,908.1 hours. The last annual maintenance inspection was conducted on November 5, 2009, and it had a total time of 3,938.0 hours. At the time of the accident, the airplane had flown 7.5 hours since the last inspection and had a total time of 3,945.5 hours.

    FAA inspectors interviewed the IA mechanic concerning the annual maintenance inspections he had conducted on the accident airplane. According to the FAA inspectors, the IA mechanic reported that he used the inspection checklists provided by the pilot/owner in order to conduct the annual maintenance inspections. The pilot/owner provided the IA mechanic with the Cessna Service Manual for “Stationair Series, Skywagon 206 Series and Super Skylane Series, 1969 thru 1971.” The service manual indicated the items that needed to be inspected during a 50-hour inspection and 100-hour (annual) inspection. In the section of the checklist covering the “Engine Compartment,” Item 29 states that the “Fuel-air control unit screen” is required to be checked during every 100-hour inspection. In the section of the checklist covering the “Fuel System,” Item 2 states that the “Fuel strainer screen and bowl” is required to be checked during every 100-hour inspection.

    The Cessna Service Manual provides the following information about the fuel strainer:

    “Section 13-42. FUEL STRAINER DISASSEMBLY. (See figure 13.9.) To disassemble and assemble the strainer, proceed as follows:

    a. Turn off fuel selector valve.
    b. Disconnect strainer drain tube and remove safety wire, nut, and washer at bottom of filter bowl and remove bowl.
    c. Carefully unscrew standpipe and remove.
    d. Remove filter screen and gasket. Wash filter screen and bowl in solvent (Federal Specification P-S-661, or equivalent) and dry with compressed air.
    e. Using a new gasket between filter screen and top assembly, install screen and standpipe. Tighten standpipe only finger tight.
    f. Using all new O-rings, install bowl. Note that step-washer at bottom of bowl is installed so that step washer seats against O-ring. Connect strainer drain tube.

    The engine manufacturer’s “Operator’s Manual for IO-520 Series Aircraft Engines, FAA Approved September 1980,” also provided a checklist for 100-hours inspections of the engine. Item 14 of the 100-hour inspection checklist stated: “Fuel Metering Unit Inlet Screen: Inspect and clean.”

    According to the FAA inspectors, the IA mechanic reported that during the last annual inspection of the fuel strainer screen and bowl, he removed the bowl and found some water in it, but he did not remove the screen or gasket. According to the FAA, he also stated several times during the interview that he never checks the fuel metering inlet fuel screen, and that he did not check it during the last annual inspection.

    The aircraft logbook indicated that during the annual maintenance inspection on May 20, 2004, the following entry was made by a different IA mechanic: “Replaced fuel strainer cable assy [assembly] and replaced strainer screen assy [assembly].” The engine logbook for the same annual inspection had this entry: “Removed engine primer system and capped at engine.”

    METEOROLOGICAL CONDITIONS

    At 0955, the observed surface weather observation at Ludington (LUD), Michigan, was: wind 290 degrees at 6 knots with gusts to 17 knots; visibility 10 miles; ceiling 1,800 feet overcast; temperature 24 degrees Celsius; dew point 22 degrees Celsius; altimeter 29.81 inches of mercury.

    At 1016, the observed surface weather observation at Ludington (LUD), Michigan, was: wind 270 degrees at 7 knots; visibility 10 miles; ceiling 1,600 feet overcast; temperature 24 degrees Celsius; dew point 22 degrees Celsius; altimeter 29.82 inches of mercury.

    WRECKAGE AND IMPACT INFORMATION

    The postaccident inspection of the airframe and engine occurred on August 2 – 3, 2010. The inspection revealed that the fuselage was intact; however, the empennage was partially separated with extensive wrinkling and bending around the tailcone section aft of the rear seats. Some of the damage to the empennage was a result of the recovery effort. Both wingtips exhibited aft crushing. The engine was separated from the fuselage. The nose landing gear was separated from the fuselage and not recovered. All flight control surfaces remained attached to the airframe structure. Flight control cable continuity was established from all flight controls to all the primary and secondary flight control surfaces. The elevator trim tab measurement equated to about 10 degrees up. The flaps were found down about 30 degrees. The flap indicator and flap switch were found at the 20 degree position. The push pull rods to lift the flaps were cut by rescue divers during the recovery of the bodies. The rear cargo doors were found in the closed position, but they opened and closed normally. The key was still in the ignition and on the “Both” position.

    The inspection of the airplane’s fuel system revealed that about 60 gallons of fuel remained in the wing fuel tanks, about 30 gallons in each side. About the first five gallons drained from the wings appeared to be a mixture of fuel and water. The remaining liquid drained was light blue in color and appeared to be aviation fuel. Both wing fuel bladder tanks and exit port screens were clean. The fuel boost pump was removed and drained of water. The boost pump operated when it was powered by a 12 volt battery. The airplane was equipped with the optional fuel primer and the fuel primer control lever in the cockpit; however, the fuel line was capped-off (not operational) at the firewall.

    The inspection of the firewall fuel strainer revealed that the gasket did not provide a complete seal between the fuel screen and upper body. Instead, a portion of the gasket was positioned over the exit port which created a gap between the fuel screen and the upper body of the fuel strainer.

    The inspection of the engine revealed that all the cylinders and engine accessories remained attached to the crankcase. Oil was present in the engine. The crankshaft was rotated and drive train continuity to the cylinders and accessories was confirmed. All damage observed was consistent with impact. The propeller remained attached to the engine crankshaft flange. Both propeller blades exhibited aft bending toward the non-cambered side of the propeller blade.

    The inspection of the engine’s throttle and fuel metering assembly revealed that the fuel inlet filter screen was safety wired. The safety wire was removed and the fuel inlet screen was removed from the fuel metering assembly. The removal of the fuel inlet screen required a consistent pull (it did not come out freely) to remove it. The visual inspection of the inlet screen revealed that it was partially obstructed by debris that had become attached to the screen. The orifice of the fuel inlet passage was inspected. It contained the same debris material that obstructed the fuel screen and the debris blocked a majority of the orifice opening.

    The firewall fuel strainer, the fuel inlet screen, and debris found in the fuel inlet screen were sent to the NTSB Materials Laboratory for examination. The engine was shipped to the engine manufacturer for further inspection.

    MEDICAL AND PATHOLOGICAL INFORMATION

    No autopsies were performed.

    SURVIVAL ASPECTS

    The pilot reported that he used the life vests that were in the pilot rated passenger’s airplane since he could not find his life vests the night prior to the flight. He put the life vests in the seat pockets so that they would be accessible to the passengers. He reported that the passengers donned their life vests during the descent prior to water impact. He had the pilot rated passenger take the controls momentarily while he donned his life vest. He stated that he heard “a couple of the vests go off” while still inside the airplane.

    During recovery of the airplane and its occupants, the patient and his wife were found in the airplane with the patient still seated in seat 6. The patient still had his vests on, but the wife’s vest had come off and it was found in the airplane. Both life vests were deflated when the bodies were recovered. The pilot rated passenger and the patient’s doctor were found on the lake bottom within 50 yards of the airplane. The doctor still had his vest on but in a deflated condition. The pilot rated passenger was not wearing a life vest. A life vest was found near the copilot’s seat, seat 2, in a deflated condition.

    The inspection of the life vests revealed that they were manufactured in the 1980’s and the CO2 cartridges used to inflate the vests were also manufactured in the 1980’s. The inspection of the life vests revealed that passenger life vests had one CO2 cartridge attached to the vest. All the cartridges were found expended during the on-site inspection. The pilot’s vest had two CO2 cartridges but only one cartridge had been expended. The pilot reported that he was not aware that the vest had two cartridges.

    Search Conditions
    According to the Mason County Sheriff’s Department, the weather was cloudy with good visibility during the initial on-scene search for the wreckage and survivors. The water temperature was between 68 and 72 degrees Fahrenheit on the surface with 2 to 4 foot seas. The waters current appeared to be moving north towards Big Sauble Lighthouse, and then moving to the northwest from the lighthouse.

    Cessna Stationair Owner’s Manual
    The Cessna Stationair Owner’s Manual provided information and procedures for emergency landing without engine power, ditching, clamshell cargo doors, cargo door emergency exit procedures, and glide distance.

    Emergency Landing Without Engine Power
    The Emergency Procedure section of the airplane Owner’s Manual provides the procedures for “Emergency Landing Without Engine Power.” The procedure stated the following:

    If an engine stoppage occurs, establish a flaps up glide at 85 MPH. If time permits, attempt to restart the engine by checking for fuel quantity, proper fuel selector valve position, and mixture control setting. Also check that engine primer is full in and locked and ignition switch is properly positioned.

    If all attempts to restart the engine fail and a forced landing is imminent, select a suitable field and prepare for the landing as follows:

    1. Pull mixture control to idle cut-off position.
    2. Turn fuel selector valve “OFF”.
    3. Turn off all switches except master switch.
    4. Approach at 90 MPH.
    5. Extend wing flaps as necessary with gliding distance of field
    6. Turn off master switch.
    7. Unlatch cabin doors prior to final approach.
    8. Land in a slightly tail-low attitude.
    9. Apply heavy braking.

    Ditching
    The Emergency Procedure section of the airplane Owner’s Manual provides the procedures for “Ditching.” The ditching procedures state:

    1. Plan approach into wind if winds are high and seas are heavy. With heavy swells and light wind, land parallel to swells.
    2. Approach with flaps 40 degrees and sufficient power for a 300 ft./min rate of descent at 75 MPH.
    3. Unlatch the cabin door.
    4. Maintain a continuous descent until touchdown in level attitude. Avoid a landing flare because of difficulty in judging airplane height over a water surface.
    5. Place folded coat or cushion if front of face at time of touchdown.
    6. Evacuate airplane through cabin doors. If necessary, open window to flood cabin compartment for equalizing pressure so that door can be opened.
    7. Inflate life vests and raft (if available) after evacuation of cabin.

    Information on Cargo Door
    The airplane’s Owner’s Manual states that when conducting the “Before Entering the Airplane” checklist during the preflight, it is important check the cargo doors are securely latched and locked. An “IMPORTANT” note states:

    “The cargo doors must be fully closed and latched before operating the electric wing flaps. A switch in the upper door sill of the front cargo door interrupts the wing flap electrical circuit when the front door is opened or removed, thus preventing the flaps being lowered with possible damage to the cargo door or wing flaps when the cargo door is open.”

    The Owner’s Manual section titled “Cargo Door Emergency Exit” states the following information:

    “If it is necessary to use the cargo door as an emergency exit and the wing flaps are not extended, open the forward door and exit. If the wing flaps are extended, open the doors in accordance with the instructions shown on the placard which is mounted on the forward cargo door.”

    The red placard found on the front cargo door of the accident airplane stated:

    EMERGENCY EXIT OPERATIONS
    1. OPEN FWD CARGO DOOR AS FAR AS POSSIBLE.
    2. ROTATE RED LEVER IN REAR CARGO DOOR FWD.
    3. FORCE REAR CARGO DOOR FULL OPEN.

    Glide Distance
    The Operator’s Manual indicated that the maximum glide distance for the airplane with the following parameters: 1) Speed 85 mph indicated airspeed; 2) Propeller windmilling; 3) Flaps up; and 4) Zero wind. The Maximum Glide chart indicated that the maximum glide distance from a height of 10,000 feet above the terrain is a ground distance of 15 statute miles.

    TESTS AND RESEARCH

    Life Vests
    The life vests were tested at a manufacturer’s facility. The vests were overdue their inspection requirements. The pressure tests indicated that the vests inflated when new CO2 cartridges were used and held pressure. No anomalies were found with the life vests that would have precluded normal inflation and operation. Federal Aviation Regulation (FAR) Part 91 regulations do not require life vests for each occupant if the airplane is operated not for hire.

    Engine Inspection
    The engine was sent to the manufacturer for inspection and operational testing. The engine was put on a test stand and run. The engine experienced a normal start. The engine RPM was advanced to 1,200 rpm and held for 5 minutes to stabilize; 1,600 rpm and held for 5 minutes to stabilize; 2,450 rpm and held for 5 minutes to stabilize; and at full throttle and held for 5 minutes to stabilize. The throttle was rapidly advanced from idle to full throttle six times and it accelerated and decelerated without hesitation or interruption in power. It produced rated horsepower.

    NTSB Materials Laboratory Examination
    The NTSB Materials Laboratory examined the debris found in the fuel metering assembly’s fuel inlet screen. The examination of the material removed from the filter revealed several categories of materials present within the mixture. The materials present included: 1) cellulosic material similar to wood and sawdust; 2) non-metallic amber-colored flakes similar to varnish or shellac; 3) thin, ribbon-like metallic shavings; 4) white flakes similar to paint; 5) granular particulates similar to sand or dirt; and 6) fibers similar to fabric and glass fiber

  • |

    NTSB Investigating Taxiway Collision at Boston Logan Airport

    The National Transportation Safety Board has opened an investigation into last night’s collision of two jetliners on a taxiway at Boston Logan Airport.

    On July 14, 2011, about 7:33 P.M. EDT, a Delta Air Lines B767-300ER, N185DN, operating as Delta flight 266, was taxiing on taxiway B for departure on runway 04 at Boston Logan International Airport (BOS), when its left winglet struck the horizontal stabilizer of an Atlantic Southeast Airlines CRJ900, N132EV, operating as ASA flight 4904, which was number three in line on taxiway M waiting for departure on runway 09.

    As the B767 approached and passed the intersection with taxiway M, the left winglet of the B767 struck the horizontal tail of the CRJ900. The CRJ900 sustained substantial damage, which included damage to the horizontal tail and vertical tail; the airplane lost fluid in all three hydraulic systems. Parts of the B767 winglet were sheared off and embedded in the tail of the CRJ900. The passengers on the CRJ900 were deplaned on the taxiway, and the B767 taxied back to the terminal.

    Flight data recorders from both airplanes are en route to NTSB headquarters. Air Safety Investigator Dan Bower is the Investigator-In-Charge. Parties to the investigation include Delta Air Lines, Atlantic Southeast Airlines, the Federal Aviation Administration, and the Air Line Pilots Association.