• Infrared and Laser Engineering
  • Vol. 49, Issue 8, 20200203 (2020)
Zhaobin Hu1, Xing Jin2, and Hao Chang2
Author Affiliations
  • 1Lunar Exploration and Space Engineering Centre, Beijing 100089, China
  • 2Space Engineering University of PLA, Beijing 101416, China
  • show less
    DOI: 10.3788/IRLA20200203 Cite this Article
    Zhaobin Hu, Xing Jin, Hao Chang. Concept of laser de-tumbling and its space-based application for space-based spinning target[J]. Infrared and Laser Engineering, 2020, 49(8): 20200203 Copy Citation Text show less
    References

    [1] C P Mark, S Kamath. Review of active space debris removal methods. Space Policy, 47, 194-206(2019).

    [2] James T Early, Camille Bibeau, Claude Phipps. Space debris debiting by vapizationimpulse using sht pulse laser[C]HighPower Laser Ablation V, Proceedings of SPIE, 2004, 5448(PART1): 441449.

    [3] A Flores-Abad, M Ou, K Pham. A review of space robotics technologies for on-orbit servicing. Progress in Aerospace Sciences, 68, 1-26(2014).

    [4] S Nishida, S Kawamoto, Y Okawa. Space debris removal system using a small satellite. Acta Astronautica, 65, 95-102(2009).

    [6] J A Borja, T Dionisio. De-orbiting process using solar radiation force. AIAA Journal of Spacecraft and Rockets, 3, 685-687(2006).

    [7] K Iki, S Kawamoto, Y Morino. Experiments and numerical simulations of an electrodynamic tether deployment from a spool-type reel using thrusters. Acta Astronautic, 94, 318-327(2014).

    [8] N O Gómez, S J I Walker. Earth’s gravity gradient and eddy currents effects on the rotational dynamics of space debris objects: Envisat case study. Advances in Space Research, 56, 494-508(2015).

    [9] Yong Lu, 路勇, 刘晓光, Xiaoguang Liu, 周宇, Yu Zhou. Review of detumbling technologies for active removal of uncooperative targets. Acta Aeronautica et Astronautic Sinica, 39, 33-45(2018).

    [10] C R Phipps, G Albrecht, H Friedman. ORION: Clearing near-Earth space debris using a 20-kW, 530-nm, Earth-based, repetitively pulsed laser. Laser & Particle Beams, 14, 1-44(1996).

    [11] Vetrisano M, Thiry N, Vasile M. Detumbling large space debris via laser ablation[C]2015 IEEE Aerospace Conference. IEEE, 2015: 110.

    [12] Kawamoto S, Matsumoto K, Wakabayashi S. Ground experiment of mechanical impulse method f uncontrollable satellite capturing[C]Proceeding of the 6th International Symposium on Artificial Intelligence Robotics & Automation in Space (iSAIRAS), 2001.

    [13] P Huang, F Zhang, Z Meng. Adaptive control for space debris removal with uncertain kinematics, dynamics and states:. Acta Astronautica, 128, 416-430(2016).

    [14] C Bombardelli, J Pelaez. Ion beam shepherd for contactless space debris removal. Journal of Guidance, Control, and Dynamics, 34, 916-920(2011).

    [15] Sugai F, Abiko S, Tsujita T, et al. Detumbling an uncontrolled satellite with contactless fce by using an eddy current brake[C]2013 IEEERSJ International Conference on Intelligent Robots Systems. IEEE, 2013: 783788.

    [16] N O Gómez, S J I Walker. Eddy currents applied to de-tumbling of space debris: Analysis and validation of approximate proposed methods. Acta Astronautica, 114, 34-53(2015).

    [18] R Kumar, R J Sedwick. Despinning orbital debris before docking using laser ablation. Journal of Spacecraft and Rockets, 52, 1129-1134(2015).

    [19] 康博琨, Bokun Kang, Xing Jin, 金星, 常浩, Hao Chang. Modeling and simulation of space based laser centimeter orbital debris detection. Infrared and Laser Engineering, 45, S229003(2016).

    [20] Yanji Hong, 洪延姬, Xing Jin, 金星, Hao Chang, 常浩. Discussion of key problems in space based laser centimeter orbital debris removal. Infrared and Laser Engineering, 45, 0229001(2016).

    [21] 林正国, Zhengguo Lin, 金星, Xing Jin, 常浩, Hao Chang. Analysis of the impulse coupling characteristics of space debris irradiated by pulsed laser with big spot. Infrared and Laser Engineering, 47, 1243001(2018).

    Zhaobin Hu, Xing Jin, Hao Chang. Concept of laser de-tumbling and its space-based application for space-based spinning target[J]. Infrared and Laser Engineering, 2020, 49(8): 20200203
    Download Citation