DocumentCode :
711991
Title :
Aireon space based ADS-B performance model
Author :
Garcia, Michael A. ; Stafford, James ; Minnix, Jay ; Dolan, John
Author_Institution :
Aireon, McLean, VA, USA
fYear :
2015
fDate :
21-23 April 2015
Abstract :
Global, continuous, low-latency, and high performance surveillance of aircraft via Space-Based ADS-B (Automatic Dependent Surveillance Broadcast) is an emerging technology for the aviation industry. The Iridium-NEXT Low Earth Orbit (LEO) satellites, which will host the Aireon ADS-B receiver payloads, will begin launching in 2015 with all 66 operational satellites in their mission orbit by 2017, gradually replacing the current Iridium satellite constellation and enabling the global ADS-B surveillance services of Aireon [1-3]. Prior to launch, a series of system and receiver models, simulations, and studies were produced in order to estimate metrics of this unique surveillance system such as the expected ADS-B aircraft position update interval. To assess whether the required update intervals for providing aircraft separation services will be achievable, the density of aircraft and other 1090 MHz in-band transmitters must be taken into account with respect to the large satellite beam footprints as a function of time and space (particularly near coastal areas where air traffic is most dense). This work describes a model for calculating the expected impact of aircraft density, mixed avionics equipage, and satellite motion on the ADS-B update interval performance for wide area space-based receiver systems. Additionally, several examples of expected performance based on the model are characterized in various Flight Information Regions (FIRs).
Keywords :
air traffic; aircraft communication; avionics; satellite communication; surveillance; ADS-B aircraft position update interval; ADS-B performance model; Aireon; Iridium-NEXT low earth orbit satellites; aircraft density; aircraft surveillance; automatic dependent surveillance broadcast; aviation industry; mixed avionics equipage; satellite motion; wide area space-based receiver systems; Aerospace electronics; Air traffic control; Aircraft; Atmospheric modeling; Radar; Receivers; Surveillance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Integrated Communication, Navigation, and Surveillance Conference (ICNS), 2015
Conference_Location :
Herdon, VA
Print_ISBN :
978-1-4673-7549-8
Type :
conf
DOI :
10.1109/ICNSURV.2015.7121219
Filename :
7121219
Link To Document :
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