DocumentCode :
1746931
Title :
A preliminary formation flying orbit dynamics analysis for Leonardo-BRDF
Author :
Hughes, Steven P. ; Mailhe, Laurie M.
Author_Institution :
Flight Dynamics Analysis Branch, NASA Goddard Space Flight Center, Greenbelt, MD, USA
Volume :
2
fYear :
2001
fDate :
2001
Abstract :
Leonardo-BRDF is a new NASA mission concept proposed to allow the investigation of radiative transfer and its effect on the Earth´s climate and atmospheric phenomenon. Enabled by the recent developments in small-satellite and formation flying technology, the mission is envisioned to be composed of an array of spacecraft in carefully designed orbits. The different perspectives provided by a distributed array of spacecraft offer a unique advantage to study the Earth´s albedo. This paper presents the flight dynamics analysis performed in the context of the Leonardo-BRDF science requirements. First, the albedo integral is investigated and the effect of viewing geometry on science return is studied. The method used in this paper, based on Gauss quadrature, provides the optimal formation geometry to ensure that the value of the integral is accurately approximated. An orbit design approach is presented to achieve specific relative orbit geometries while simultaneously satisfying orbit dynamics constraints to reduce formation-keeping fuel expenditure. The relative geometry afforded by the design is discussed in terms of mission requirements. An optimal Lambert initialization scheme is presented with the required ΔV to distribute all spacecraft from a common parking orbit into their appropriate orbits in the formation. Finally, formation-keeping strategies are developed and the associated ΔV´s are calculated to maintain the formation in the presence of perturbations
Keywords :
albedo; arrays; artificial satellites; dynamics; radiative transfer; Earth albedo; Earth climate study; Gauss quadrature; Leonardo-BRDF requirements; NASA mission concept; albedo integral; atmospheric phenomenon; bi-directional reflectance distribution function; distributed array; formation flying orbit dynamics analysis; formation-keeping fuel expenditure reduction; formation-keeping strategies; optimal Lambert initialization scheme; optimal formation geometry; orbit design approach; orbit dynamics constraints; radiative transfer study; small-satellite technology; spacecraft array; specific relative orbit geometries; viewing geometry; Algorithm design and analysis; Control systems; Fuels; Gaussian approximation; Geometry; NASA; Orbital calculations; Performance analysis; Space technology; Space vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Aerospace Conference, 2001, IEEE Proceedings.
Conference_Location :
Big Sky, MT
Print_ISBN :
0-7803-6599-2
Type :
conf
DOI :
10.1109/AERO.2001.931237
Filename :
931237
Link To Document :
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