With the expected worldwide increase of air traffic during the coming decade, both the Federal Aviation Administration's (FAA's) Next Generation Air Transportation System (NextGen), as well as Eurocontrol's Single European Sky ATM Research (SESAR) program have, as part of their plans, air traffic management solutions that can increase performance without requiring time-consuming and expensive infrastructure changes. One such solution involves the ability of both controllers and flight crews to deliver aircraft to the runway with greater accuracy than is possible today. Previous research has shown that time-based spacing techniques, wherein the controller assigns a time spacing to each pair of arriving aircraft, is one way to achieve this goal by providing greater runway delivery accuracy that produces a concomitant increase in system-wide performance. The research described herein focuses on a specific application of time-based spacing, called Airborne Precision Spacing (APS), which has evolved over the past ten years. This research furthers APS understanding by studying its performance with realistic wind conditions obtained from atmospheric sounding data and with realistic wind forecasts obtained from the Rapid Update Cycle (RUC) short-range weather forecast. In addition, this study investigates APS performance with limited surveillance range, as provided by the Automatic Dependent Surveillance-Broadcast (ADS-B) system, and with an algorithm designed to improve APS performance when an ADS-B signal is unavailable. The results presented herein quantify the runway threshold delivery accuracy of APS under these conditions, and also quantify resulting workload metrics such as the number of speed changes required to maintain spacing.
[1]
Bryan E. Barmore,et al.
Fast-Time Evaluations of Airborne Merging and Spacing in Terminal Arrival Operations
,
2005
.
[2]
P. Rousseeuw.
Silhouettes: a graphical aid to the interpretation and validation of cluster analysis
,
1987
.
[3]
Gary W. Lohr,et al.
Evaluation of Operational Procedures for Using a Time-Based Airborne Inter-arrival Spacing Tool
,
2002
.
[4]
Jacco M. Hoekstra,et al.
Traffic Manager - Traffic Simulation for Validation of Future ATM Concepts
,
2003
.
[5]
Rosa M. Oseguera-Lohr,et al.
FLIGHT EVALUATION OF A TIME-BASED AIRBORNE INTER- ARRIVAL SPACING TOOL
,
2003
.
[6]
B. Barmore.
Airborne Precision Spacing: A Trajectory-Based Aprroach to Improve Terminal Area Operations
,
2006,
2006 ieee/aiaa 25TH Digital Avionics Systems Conference.
[7]
Bryan E. Barmore,et al.
Simulation Results for Airborne Precision Spacing along Continuous Descent Arrivals
,
2008
.
[8]
R. Suganya,et al.
Data Mining Concepts and Techniques
,
2010
.
[9]
F. Bussink,et al.
AIRBORNE PRECISION SPACING IN MERGING TERMINAL ARRIVAL ROUTES: A FAST-TIME SIMULATION STUDY
,
2005
.
[10]
Vincent E. Houston,et al.
An Exploratory Study of Runway Arrival Procedures: Time Based Arrival and Self-Spacing
,
2009
.
[11]
William J. Penhallegon,et al.
EVALUATION OF A FLIGHT DECK-BASED MERGING AND SPACING CONCEPT ON EN-ROUTE AIR TRAFFIC CONTROL OPERATIONS
,
2007
.