DocumentCode :
1883329
Title :
GPS relative navigation for automatic spacecraft rendezvous and capture
Author :
Galdos, Jorge I. ; Upadhyay, Triveni N. ; Deaton, A. Wayne ; Lomas, James J.
Author_Institution :
Mayflower Communications Co. Inc., Reading, MA, USA
fYear :
1993
fDate :
16-17 Jun 1993
Firstpage :
155
Lastpage :
168
Abstract :
NASA, in collaboration with the European Space Agency (ESA), is planning a space experiment involving the space shuttle and two spacecraft in low Earth orbit to demonstrate autonomous rendezvous and capture (AR&C). The results of the preliminary design of a global positioning system (GPS)-based relative navigation filter for AR&C are presented. The domain of operation of the GPS relative navigation filter considered here is from a 2-km separation to 100-m proximity operation. The authors describe the navigation filter algorithm, the truth models employed in the evaluation of filter performance, and the results of the performance evaluation. Relative navigation filter performance results obtained by simulation show a relative position accuracy of about 2 m (1-σ) in the presence of selective availability (SA) errors. In contrast, the performance of the more traditional state vector difference (SVD) method is shown to fluctuate in the 10-20-m range. The results obtained demonstrate that the filter developed provides higher relative navigation accuracy and greater immunity to transients than the SVD approach
Keywords :
filters; radionavigation; satellite relay systems; space vehicles; ESA; European Space Agency; GPS relative navigation; Global Positioning System; NASA; automatic spacecraft capture; automatic spacecraft rendezvous; autonomous rendezvous and capture; filter performance; low Earth orbit; navigation filter algorithm; performance evaluation; relative navigation filter; relative position accuracy; selective availability errors; simulation; space experiment; space shuttle; state vector difference method; transients immunity; truth models; Collaboration; Filters; Global Positioning System; NASA; Navigation; Space shuttles; Space technology; Space vehicles; State estimation; TV receivers;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Telesystems Conference, 1993. 'Commercial Applications and Dual-Use Technology', Conference Proceedings., National
Conference_Location :
Atlanta, GA
Print_ISBN :
0-7803-1325-9
Type :
conf
DOI :
10.1109/NTC.1993.292992
Filename :
292992
Link To Document :
بازگشت