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Robust Trajectory Design for Rendezvous in a Near Rectilinear Halo OrbitFuture NASA Artemis missions will require complex docking plans between the Orion capsule and Lunar Gateway that meet predetermined safety constraints while minimizing fuel usage and state uncertainty at rendezvous. In this paper, linear covariance analysis is applied to a first order relative form of Near-Rectilinear Halo Orbit dynamics to determine the nominal trajectories and state dispersions associated with various maneuver profiles in the Sun-referenced Local Vertical Local Horizontal reference frame of the lunar Gateway. These maneuver profiles are optimized using a particle swarm optimizer and direct search algorithm to find trajectories that satisfy approach corridor, free drift, velocity magnitude, under-burn, and maneuver transfer time safety constraints to 3-sigma certainty.
Document ID
20230000757
Acquisition Source
Johnson Space Center
Document Type
Conference Paper
Authors
Timothy Goulet
(United States Air Force Academy Colorado Springs, Colorado, United States)
David Woffinden
(Johnson Space Center Houston, Texas, United States)
Nathan Collins
(United States Air Force Academy Colorado Springs, Colorado, United States)
Blythe Andrews
(United States Air Force Academy Colorado Springs, Colorado, United States)
Date Acquired
January 17, 2023
Subject Category
Astrodynamics
Report/Patent Number
AAS 23-066
Meeting Information
Meeting: Rocky Mountain AAS GN&C Conference
Location: Breckenridge, CO
Country: US
Start Date: February 2, 2023
End Date: February 8, 2023
Sponsors: American Astronautical Society
Funding Number(s)
WBS: 374409.06.13.15.99.10
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Keywords
Linear Covariance Analysis
GN&C
Trajectory Design
Optical Navigation
RPOD
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