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Lightforce Photon-Pressure Collision Avoidance: Efficiency Analysis in the Current Debris Environment and Long-Term Simulation PerspectiveThis work provides an efficiency analysis of the LightForce space debris collision avoidance scheme in the current debris environment and describes a simulation approach to assess its impact on the long-term evolution of the space debris environment. LightForce aims to provide just-in-time collision avoidance by utilizing photon pressure from ground-based industrial lasers. These ground stations impart minimal accelerations to increase the miss distance for a predicted conjunction between two objects. In the first part of this paper we will present research that investigates the short-term effect of a few systems consisting of 20-kilowatt-class lasers directed by 1.5-meter-diameter telescopes using adaptive optics. The results found such a network of ground stations to mitigate more than 85 percent of conjunctions and could lower the expected number of collisions in Low Earth Orbit (LEO) by an order of magnitude. While these are impressive numbers that indicate LightForce's utility in the short-term, the remaining 15 percent of possible collisions contain (among others) conjunctions between two massive objects that would add large amount of debris if they collide. Still, conjunctions between massive objects and smaller objects can be mitigated. Hence, we choose to expand the capabilities of the simulation software to investigate the overall effect of a network of LightForce stations on the long-term debris evolution. In the second part of this paper, we will present the planned simulation approach for that effort. For the efficiency analysis of collision avoidance in the current debris environment, we utilize a simulation approach that uses the entire Two Line Element (TLE) catalog in LEO for a given day as initial input. These objects are propagated for one year and an all-on-all conjunction analysis is performed. For conjunctions that fall below a range threshold, we calculate the probability of collision and record those values. To assess efficiency, we compare a baseline (without collision avoidance) conjunction analysis with an analysis where LightForce is active. Using that approach, we take into account that collision avoidance maneuvers could have effects on third objects. Performing all-on-all conjunction analyses for extended period of time requires significant computer resources; hence we implemented this simulation utilizing a highly parallel approach on the NASA Pleiades supercomputer.
Document ID
20160011953
Acquisition Source
Ames Research Center
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Fan Yang Yang
(Millennium Engineering and Integration (United States) Arlington, Virginia, United States)
Bron Nelson
(Computer Sciences Corporation (United States) Falls Church, Virginia, United States)
Jonathan Aziz
(University of Colorado Boulder Boulder, Colorado, United States)
Roberto Carlino
(Wyle (United States) El Segundo, California, United States)
Andres Dono Perez
(Millennium Engineering and Integration (United States) Arlington, Virginia, United States)
Nicolas Faber
(Stinger Ghaffarian Technologies (United States) Greenbelt, Maryland, United States)
Cyrus Foster
(Planet Labs San Francisco, CA, United States)
Chad Frost
(Ames Research Center Mountain View, California, United States)
Chris Henze
(Ames Research Center Mountain View, California, United States)
Arif Goktug Karacalioglu
(Stinger Ghaffarian Technologies (United States) Greenbelt, Maryland, United States)
Creon Levit
(Planet Labs San Francisco, CA, United States)
William Marshall
(Planet Labs San Francisco, CA, United States)
James Mason
(Planet Labs San Francisco, CA, United States)
Conor O’Toole
(National University of Ireland Dublin, Ireland)
Jason Swenson
(Lockheed Martin (United States) Bethesda, Maryland, United States)
Simon P Worden
(Breakthrough Initiatives United States)
Jan Stupl
(Stinger Ghaffarian Technologies (United States) Greenbelt, Maryland, United States)
Date Acquired
October 4, 2016
Publication Date
May 10, 2016
Publication Information
Publication: Acta Astronautica
Publisher: Elsevier
Volume: 126
Issue Publication Date: September 1, 2016
ISSN: 0094-5765
Subject Category
Space Transportation And Safety
Report/Patent Number
ARC-E-DAA-TN33101
Report Number: ARC-E-DAA-TN33101
ISSN: 0094-5765
Funding Number(s)
CONTRACT_GRANT: NNA13AC87C
CONTRACT_GRANT: NNA08CG83C
CONTRACT_GRANT: NNA07CA29C
CONTRACT_GRANT: NAS2-02090
CONTRACT_GRANT: NNA10DF26C
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Keywords
space debris mitigation
laser
conjunction analysis
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