Feedback slew algorithms for prolate spinners using Single–Thruster

A number of low-cost open-loop slew control algorithms have been developed for prolate spinning spacecraft using single-thruster actuation. Robustness analysis indicates that these algorithms have high sensitiveness over thruster firing time error, spacecraft inertia error, and especially spin rate...

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Main Authors: Yang, Gao, Abadi, Chanik
Format: Article
Language:English
Published: Elsevier Science, Ltd. 2018
Subjects:
Online Access:http://ir.unimas.my/id/eprint/39060/1/S0094576516312358
http://ir.unimas.my/id/eprint/39060/
https://www.sciencedirect.com/science/article/abs/pii/S0094576516312358#!
https://doi.org/10.1016/j.actaastro.2017.11.044
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Institution: Universiti Malaysia Sarawak
Language: English
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spelling my.unimas.ir.390602022-08-03T08:50:26Z http://ir.unimas.my/id/eprint/39060/ Feedback slew algorithms for prolate spinners using Single–Thruster Yang, Gao Abadi, Chanik TK Electrical engineering. Electronics Nuclear engineering A number of low-cost open-loop slew control algorithms have been developed for prolate spinning spacecraft using single-thruster actuation. Robustness analysis indicates that these algorithms have high sensitiveness over thruster firing time error, spacecraft inertia error, and especially spin rate perturbations. This paper proposed two novel feedback slew algorithms, Feedback Half-Cone and Feedback Sector-Arc Slew, built on the existing open-loop algorithms and they use attitude and angular velocity feedback to compensate the errors in knowledge of spin rate, without external torques. As presented, after the first thruster actuation initiate the spin-axis precession, the feedback slew algorithms take attitude and spin-rate feedback to estimate the angular momentum and predict the spin-axis attitude during the slew. These techniques contribute to improve the cancelation thrust impulse accuracy and reduce the final nutation error. Simulations for a Penetrator mission scenario validate these feedback algorithms and show their slew performance and robustness over the perturbations mentioned above. It is proved that the attitude feedback greatly improves the slew accuracy and robustness. Elsevier Science, Ltd. 2018 Article PeerReviewed text en http://ir.unimas.my/id/eprint/39060/1/S0094576516312358 Yang, Gao and Abadi, Chanik (2018) Feedback slew algorithms for prolate spinners using Single–Thruster. Acta Astronautica, 144. pp. 39-51. ISSN 0094-5765 https://www.sciencedirect.com/science/article/abs/pii/S0094576516312358#! https://doi.org/10.1016/j.actaastro.2017.11.044
institution Universiti Malaysia Sarawak
building Centre for Academic Information Services (CAIS)
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Sarawak
content_source UNIMAS Institutional Repository
url_provider http://ir.unimas.my/
language English
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Yang, Gao
Abadi, Chanik
Feedback slew algorithms for prolate spinners using Single–Thruster
description A number of low-cost open-loop slew control algorithms have been developed for prolate spinning spacecraft using single-thruster actuation. Robustness analysis indicates that these algorithms have high sensitiveness over thruster firing time error, spacecraft inertia error, and especially spin rate perturbations. This paper proposed two novel feedback slew algorithms, Feedback Half-Cone and Feedback Sector-Arc Slew, built on the existing open-loop algorithms and they use attitude and angular velocity feedback to compensate the errors in knowledge of spin rate, without external torques. As presented, after the first thruster actuation initiate the spin-axis precession, the feedback slew algorithms take attitude and spin-rate feedback to estimate the angular momentum and predict the spin-axis attitude during the slew. These techniques contribute to improve the cancelation thrust impulse accuracy and reduce the final nutation error. Simulations for a Penetrator mission scenario validate these feedback algorithms and show their slew performance and robustness over the perturbations mentioned above. It is proved that the attitude feedback greatly improves the slew accuracy and robustness.
format Article
author Yang, Gao
Abadi, Chanik
author_facet Yang, Gao
Abadi, Chanik
author_sort Yang, Gao
title Feedback slew algorithms for prolate spinners using Single–Thruster
title_short Feedback slew algorithms for prolate spinners using Single–Thruster
title_full Feedback slew algorithms for prolate spinners using Single–Thruster
title_fullStr Feedback slew algorithms for prolate spinners using Single–Thruster
title_full_unstemmed Feedback slew algorithms for prolate spinners using Single–Thruster
title_sort feedback slew algorithms for prolate spinners using single–thruster
publisher Elsevier Science, Ltd.
publishDate 2018
url http://ir.unimas.my/id/eprint/39060/1/S0094576516312358
http://ir.unimas.my/id/eprint/39060/
https://www.sciencedirect.com/science/article/abs/pii/S0094576516312358#!
https://doi.org/10.1016/j.actaastro.2017.11.044
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