DocumentCode
2566528
Title
Optimal time advance in terminal area arrivals: Throughput vs. fuel savings
Author
Sadovsky, Alexander V. ; Swenson, Harry N. ; Haskell, William B. ; Rakas, Jasenka
Author_Institution
NASA Ames Res. Center, Moffett Field, CA, USA
fYear
2011
fDate
16-20 Oct. 2011
Abstract
The current operational practice in scheduling air traffic arriving at an airport is to adjust flight schedules by delay, i.e. a postponement of an aircraft´s arrival at a scheduled location, to manage safely the FAA-mandated separation constraints between aircraft. To meet the observed and forecast growth in traffic demand, however, the practice of time advance (speeding up an aircraft toward a scheduled location) is envisioned for future operations as a practice additional to delay. Time advance has two potential advantages. The first is the capability to minimize, or at least reduce, the excess separation (the distances between pairs of aircraft immediately in-trail) and thereby to increase the throughput of the arriving traffic. The second is to reduce the total traffic delay when the traffic sample is below saturation density. A cost associated with time advance is the fuel expenditure required by an aircraft to speed up. We present an optimal control model of air traffic arriving in a terminal area and solve it using the Pontryagin Maximum Principle. The admissible controls allow time advance, as well as delay, some of the way. The cost function reflects the trade-off between minimizing two competing objectives: excess separation (negatively correlated with throughput) and fuel burn. A number of instances are solved using three different methods, to demonstrate consistency of solutions.
Keywords
aircraft control; airports; optimal control; scheduling; FAA-mandated separation constraints; Pontryagin maximum principle; air traffic; aircraft arrival; airport; cost function; flight schedules; forecast growth; fuel savings; optimal control model; optimal time advance; terminal area; terminal area arrivals; traffic delay; traffic sample; Air traffic control; Aircraft; Atmospheric modeling; Delay; Fuels; Optimal control;
fLanguage
English
Publisher
ieee
Conference_Titel
Digital Avionics Systems Conference (DASC), 2011 IEEE/AIAA 30th
Conference_Location
Seattle, WA
ISSN
2155-7195
Print_ISBN
978-1-61284-797-9
Type
conf
DOI
10.1109/DASC.2011.6095998
Filename
6095998
Link To Document