Articles | Volume 13, issue 2
https://doi.org/10.5194/ms-13-751-2022
https://doi.org/10.5194/ms-13-751-2022
Research article
 | 
30 Aug 2022
Research article |  | 30 Aug 2022

Dynamic and sliding mode control of space netted pocket system capturing and attitude maneuver non-cooperative target

Chao Tang, Zhuoran Huang, Cheng Wei, and Yang Zhao

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Cited articles

Barmin, I. V., Dunham, D. W., Kulagin, V. P., Savinykh, V. P., and Tsvetkov, V. Y.: Rings of debris in near-Earth space, Solar Syst. Res., 48, 593–600, https://doi.org/10.1134/s0038094614070041, 2014. 
Biesbroek, R., Innocenti, L., Wolahan, A., and Serrano, S. M.: E.DEORBIT – ESA'S ACTIVE DEBRIS REMOVAL MISSION, JBIS-J. Brit. Interpla., 70, 143–151, 2017. 
Bonnal, C., Ruault, J.-M., and Desjean, M.-C.: Active debris removal: Recent progress and current trends, Acta Astronaut., 85, 51–60, https://doi.org/10.1016/j.actaastro.2012.11.009, 2013. 
Chen, S.: The Space Debris Problem, Asian Perspec., 35, 537–558, https://doi.org/10.1017/S1752971911000145, 2011. 
Forshaw, J. L., Aglietti, G. S., Navarathinam, N., Kadhem, H., Salmon, T., Pisseloup, A., Joffre, E., Chabot, T., Retat, I., Axthelm, R., Barraclough, S., Ratcliffe, A., Bernal, C., Chaumette, F., Pollini, A., and Steyn, W. H.: RemoveDEBRIS: An in-orbit active debris removal demonstration mission, Acta Astronaut., 127, 448–463, https://doi.org/10.1016/j.actaastro.2016.06.018, 2016. 
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Short summary
Similar to a space flying net, the capture field of the space netted pocket system is large and it can be applied to capture space non-cooperative targets flexibly. In this paper, a space netted pocket system is designed and modeled. The dynamic model and control method is verified through the simulation of the virtual prototype. Results show that the service spacecraft can maintain the attitude stability during the target capture process and can track the desired angle during attitude maneuver.