FAA RELEASE: The FAA is Working to Keep U.S. Runways Safe

Similar Posts

  • |

    Press Release – FAA Dedicates New Reno Air Traffic Control

    RENO, Nev. – The Federal Aviation Administration (FAA) today dedicated a new, modernized 195 foot-tall air traffic control tower at Reno-Tahoe International Airport.

    “Upgrading our aviation infrastructure is one of our highest priorities, and this new tower will provide Reno-Tahoe International Airport with one of the nation’s most modern air traffic control facilities,” U.S. Transportation Secretary Ray LaHood said.

    “This is a great day for aviation in Nevada,” said FAA Administrator Randy Babbitt. “The new tower will improve safety and efficiency by providing controllers with better airfield views and more modern equipment.”

    The new tower was built with FAA facilities and equipment dollars, which are used to modernize the air traffic control system.

    Reno’s new control tower is almost three times the height of the old tower, which was built in 1957. The airport’s runways are considerably longer than they were when the old tower was built, which made it challenging for controllers to see aircraft on certain taxiways and runways. The old tower also experienced glare from lights on the cargo areas.

    Renocontrollers also now will have state-of-the-art equipment that includes multicolor radar displays, touch-screen voice communications, and touch-screen work stations that provide instant information on everything from weather conditions to air traffic manuals. Double-thick sun shades will help prevent glare inside the 610-square-foot controller work area. Additionally, the new tower will have two backup power systems to help ensure uninterrupted operations.

    Tower controllers direct aircraft within about five miles of the airport up to an altitude of 3,000 feet. The new tower and a 10,000 square-foot base building cost $29.4 million to build and equip. Construction began in January 2008. Reno-Tahoe International Airport served about 100,000 flights in 2009.

    To include the featured image in your Twitter Card, please tap or click their icon a second time.
  • |

    GE Aviation’s 2011 M601 Line Maintenance Training Schedule

    GE Aviation is offering M601 Line Maintenance Training at its Customer Technical Education Center (CTEC) in Cincinnati, Ohio. There are two sessions available – March 7 to 8 and Oct. 31 to Nov. 1.

    The first two M601E Line Maintenance courses were held at CTEC last year. The Air Transport Authority (ATA) level III course includes classroom and hands-on training for line maintenance mechanics and aircraft operators. Instructors will provide training on inspections, layout and operation, engine airflow, oil systems and components, fuel systems and components, exhaust systems, reduction gearboxes, air inlet, compressor section, power turbine section, combustion chambers, engine maintenance practices and general troubleshooting.

    To reserve your slot, contact Jennifer. For any questions regarding the course, contact Andrew Pierson. For more information about CTEC, visit http://geaviation.com/services/ctec.

    GE Aviation’s Business & General Aviation Turboprops has more than 1,600 M601 engines in service that have accumulated more than 17 million flight hours on 30 applications. The M601E-11 engine is the workhorse version of the proven M601 series engines for use in agriculture and utility aircraft applications. With no hot section inspection requirement and an internal fuel slinger free of recurrent fuel nozzle maintenance, the M601E engine provides distinct cost-of-ownership advantages.

    Flight testing on the H80 engine continues on the Thrush 510G aircraft. The H80 engine is undergoing certification testing and will power business and general aviation, utility and agriculture aircraft. The H80 engine combines the elegant, robust design of the M601 engine with GE’s 3-D aerodynamic design techniques and advanced materials to create a more powerful, fuel-efficient, durable engine compared with the M601 engine, with no recurrent fuel nozzle inspections and no hot section inspection. The H80 engine will also feature an extended service life of 3,600 flight-hours or 6,600 cycles between overhauls, significantly enhanced hot-day takeoff performance and high-altitude cruise speeds. The H80 will provide the option of a single- or dual-acting governor, allowing customers flexibility in propeller selection.

    GE Aviation, an operating unit of GE (NYSE: GE), is a world-leading provider of jet and turboprop engines, components and integrated systems for commercial, military, business and general aviation aircraft. GE Aviation has a global service network to support these offerings. For more information, visit us at www.ge.com/aviation. Learn more about GE Business & General Aviation at http://facebook.com/GEBGA. Follow GE Aviation on Twitter at http://twitter.com/GEAviation and YouTube at http://www.youtube.com/user/GEAviation.

    To include the featured image in your Twitter Card, please tap or click their icon a second time.
  • |

    Norwegian Air Shuttle Exercises Purchase Rights for 15 Boeing Next-Generation 737s

    FARNBOROUGH, United Kingdom, July 19 /PRNewswire-FirstCall/ — The Boeing Company (NYSE: BA) and low-cost carrier Norwegian Air Shuttle ASA today signed an agreement at the Farnborough International Airshow for 15 Boeing 737-800s. The airline is exercising purchase rights from its landmark 2007 order for 42 Next-Generation 737s. Today’s order is valued at $1.15 billion at average list prices and increases the airline’s unfilled orders to 59 Next-Generation 737s.

    Norwegian Air Shuttle, which operates commercially as “Norwegian,” is the second largest airline in Scandinavia and has a route portfolio that stretches across Europe into North Africa and the Middle East.

    “We owe our success to our customers – almost 11 million passengers chose to fly with us in 2009. The Next-Generation 737 allows us to offer them on-time departures and arrivals, an environmentally-responsible and comfortable journey,” said Bjorn Kjos, CEO of Norwegian Air Shuttle ASA. “We recognize the tremendous value Boeing’s products and services bring to our business and are highly appreciative of the people of The Boeing Company.”

    Norwegian’s landmark order in 2007 for 42 airplanes and 42 purchase rights was the largest ever airplane order from any Scandinavian carrier. Norwegian also is among the first airlines in the world to incorporate the new, spacious 737 Boeing Sky Interior into its airplanes. The interior features soft, blue-sky-like lighting overhead, contemporary sculpted sidewalls and window reveals designed to draw passengers’ eyes to the airplanes’ windows, enhancing the passengers’ overall flying experience.
    “Increasing the production rate of the Next-Generation 737 was the right thing to do to support the growth ambitions of successful carriers like Norwegian,” said Marlin Dailey, vice president Sales and Marketing, Boeing Commercial Airplanes. “At the same time, we are improving the performance of the Next-Generation 737 to reduce fuel consumption and emissions by a further 2 percent.”

    Boeing routinely seeks environmental improvements throughout its product development process. In the case of the Next-Generation 737, improved aerodynamics, a lighter airframe, and a lighter and more powerful engine produced by the French-American partnership CFMI, have led to major environmental gains compared to previous models.

    To include the featured image in your Twitter Card, please tap or click their icon a second time.
  • NCAR Press Release: New NCAR System May Guide Transoceanic Flights Around Storms and Turbulence

    July 07, 2009

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

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

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

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

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

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

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

    Flying with little information

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

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

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

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

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

    Pinpointing the turbulence

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

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

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

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

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

    Artificial intelligence at work

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

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

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

    To include the featured image in your Twitter Card, please tap or click their icon a second time.
  • |

    Lockheed Martin Delivers 300th Common Cockpit to the U.S. Navy

    OWEGO, N.Y., Feb. 23, 2011 /PRNewswire/ — Lockheed Martin (NYSE: LMT) has successfully delivered the 300th Common Cockpit, the nerve center for every multi-mission helicopter in the U.S. Navy fleet, aboard an MH-60S.
    “The Common Cockpit underwent one of the most demanding certification processes at NAVAIR, and is now the standard by which all cockpits are judged,” said Capt. Dean Peters, NAVAIR program manager for H-60 Multi-Mission Helicopters. “Our MH-60R and MH-60S crews rely on this system to support the broad range of missions and operations they fly every day.”

    The Common Cockpit is the hub of all activity aboard MH-60R and MH-60S aircraft. Four large, flat-panel, multi-function, night-vision-compatible, color display screens provide the crew with instant information on everything from weather to weapons and sensors.

    “The Common Cockpit reduces workload and increases situational awareness for MH-60R and MH-60S crews,” said George Barton, director of Naval Helicopter programs at Lockheed Martin. “Having a common cockpit also reduces the logistics footprint and total ownership cost to the Navy.”

    Upcoming improvements to the Common Cockpit will include the addition of the Situational Awareness Technology Insertion (SATI) package, which is a set of upgrades to the flight management system. A new integrated digital map will provide pilots with a clear picture of their operating area, and an upgrade to the Identification Friend-or-Foe system will ensure there is no interference during transmission and that it is interoperable with the Federal Aviation Administration and other agencies.

    Headquartered in Bethesda, Md., Lockheed Martin is a global security company that employs about 132,000 people worldwide and is principally engaged in the research, design, development, manufacture, integration and sustainment of advanced technology systems, products and services. The Corporation’s 2010 sales from continuing operations were $45.8 billion.

    To include the featured image in your Twitter Card, please tap or click their icon a second time.
  • |

    Boeing Appoints Antoine Balas Communications Director for France

    PARIS, April 12, 2010 — Boeing [NYSE: BA] has appointed Antoine Balas as Director of Corporate Communications for France. He will be responsible for developing the company’s communications strategies and engaging with key stakeholders in the French market.

    “France is a major customer and a strong partner for Boeing. Our industrial partnerships in France have been bolstered with the launch of the 787 Dreamliner”, said Yves Galland, president of Boeing France. “We are very pleased to welcome Antoine, who will work closely with the international teams to enhance the company’s reputation and help to grow our business in the country”.
    Balas, 39, has a 15-year career in corporate communications. From 1996 to 2004, he held various European positions within Honeywell International, including Communications Manager for the Aerospace organization in Europe. In 2004, he joined the French automotive supplier Valeo as Group Internal Communications Manager. In his last position at Valeo, he led Corporate Communications and Media Relations. He holds a degree in International Trade and a degree in Communications and Public Relations from ISERP.

    Since the opening of its Paris office in 2003, under the leadership of Yves Galland, Boeing has significantly increased its partnerships with French suppliers, creating the “Boeing French Team”. In France, more than 100 suppliers collaborate on Boeing programs.

    To include the featured image in your Twitter Card, please tap or click their icon a second time.