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Time Dependence of Collision Probabilities During Satellite ConjunctionsThe NASA Conjunction Assessment Risk Analysis (CARA) team has recently implemented updated software to calculate the probability of collision (P (sub c)) for Earth-orbiting satellites. The algorithm can employ complex dynamical models for orbital motion, and account for the effects of non-linear trajectories as well as both position and velocity uncertainties. This “3D P (sub c)” method entails computing a 3-dimensional numerical integral for each estimated probability. Our analysis indicates that the 3D method provides several new insights over the traditional “2D P (sub c)” method, even when approximating the orbital motion using the relatively simple Keplerian two-body dynamical model. First, the formulation provides the means to estimate variations in the time derivative of the collision probability, or the probability rate, R (sub c). For close-proximity satellites, such as those orbiting in formations or clusters, R (sub c) variations can show multiple peaks that repeat or blend with one another, providing insight into the ongoing temporal distribution of risk. For single, isolated conjunctions, R (sub c) analysis provides the means to identify and bound the times of peak collision risk. Additionally, analysis of multiple actual archived conjunctions demonstrates that the commonly used “2D P (sub c)” approximation can occasionally provide inaccurate estimates. These include cases in which the 2D method yields negligibly small probabilities (e.g., P (sub c)) is greater than 10 (sup -10)), but the 3D estimates are sufficiently large to prompt increased monitoring or collision mitigation (e.g., P (sub c) is greater than or equal to 10 (sup -5)). Finally, the archive analysis indicates that a relatively efficient calculation can be used to identify which conjunctions will have negligibly small probabilities. This small-P (sub c) screening test can significantly speed the overall risk analysis computation for large numbers of conjunctions.
Document ID
20170001477
Acquisition Source
Goddard Space Flight Center
Document Type
Conference Paper
Authors
Hall, Doyle T.
(Omitron, Inc. Colorado Springs, CO, United States)
Hejduk, Matthew D.
(Astrorum Consulting, LLC Waco, TX, United States)
Johnson, Lauren C.
(Omitron, Inc. Colorado Springs, CO, United States)
Date Acquired
February 8, 2017
Publication Date
February 5, 2017
Subject Category
Space Communications, Spacecraft Communications, Command And Tracking
Report/Patent Number
GSFC-E-DAA-TN39330
GSFC-E-DAA-TN38476-1
Meeting Information
Meeting: AAS/AIAA Space Flight Mechanics Meeting
Location: San Antonio, TX
Country: United States
Start Date: February 5, 2017
End Date: February 9, 2017
Sponsors: American Astronautical Society, American Inst. of Aeronautics and Astronautics
Funding Number(s)
CONTRACT_GRANT: NNG14VC09C
OTHER: 2017-595-CARA
Distribution Limits
Public
Copyright
Public Use Permitted.
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