A significant bottleneck in the current air traffic system occurs at the runway. Expanding airports and adding new runways will help solve this problem; however, this comes with significant costs: financially, politically and environmentally. A complementary solution is to safely increase the capacity of current runways. This can be achieved by precisely spacing aircraft at the runway threshold, with a resulting reduction in the spacing bu er required under today s operations. At NASA's Langley Research Center, the Airspace Systems program has been investigating airborne technologies and procedures that will assist the flight crew in achieving precise spacing behind another aircraft. A new spacing clearance allows the pilot to follow speed cues from a new on-board guidance system called Airborne Merging and Spacing for Terminal Arrivals (AMSTAR). AMSTAR receives Automatic Dependent Surveillance-Broadcast (ADS-B) reports from an assigned, leading aircraft and calculates the appropriate speed for the ownship to fly to achieve the desired spacing interval, time- or distance-based, at the runway threshold. Since the goal is overall system capacity, the speed guidance algorithm is designed to provide system-wide benefits and stability to a string of arriving aircraft. An experiment was recently performed at the NASA Langley Air Traffic Operations Laboratory (ATOL) to test the flexibility of Airborne Precision Spacing operations under a variety of operational conditions. These included several types of merge and approach geometries along with the complementary merging and in-trail operations. Twelve airline pilots and four controllers participated in this simulation. Performance and questionnaire data were collected from a total of eighty-four individual arrivals. The pilots were able to achieve precise spacing with a mean error of 0.5 seconds and a standard deviation of 4.7 seconds. No statistically significant di erences in spacing performance were found between in-trail and merging operations or among the three modeled airspaces. Questionnaire data showed general acceptance for both pilots and controllers. These results reinforce previous findings from full-mission simulation and flight evaluation of the in-trail operations. This paper reviews the results of this simulation in detail.


    Zugriff

    Zugriff über TIB

    Verfügbarkeit in meiner Bibliothek prüfen


    Exportieren, teilen und zitieren



    Titel :

    Evaluation of Airborne Precision Spacing in a Human-in-the-Loop Experiment


    Beteiligte:

    Kongress:

    AIAA 5th Aviation Technology, Integration, and Operations Conference (ATIO) ; 2005 ; Arlington, VA, United States


    Erscheinungsdatum :

    2005-01-01


    Medientyp :

    Preprint


    Format :

    Keine Angabe


    Sprache :

    Englisch




    Evaluation of Airborne Precision Spacing in a Human-in-the-Loop Experiment

    Barmore, Bryan / Abbott, Terence / Capron, William | AIAA | 2005


    Evaluation of Airborne Precision Spacing in a Human-in-the-Loop Experiment

    B. E. Barmore / T. S. Abbott / W. R. Capron | NTIS | 2005


    Airborne Precision Spacing Interval Management

    Bryan E Barmore / William C Johnson | NTRS


    Maturing Airborne Precision Spacing through Field Testing

    Brad Snowden / Brian T Baxley | NTRS | 2011


    Performance of Airborne Precision Spacing under realistic weather conditions

    Wieland, Frederick / Santos, Michel / Krueger, William et al. | IEEE | 2011