[1] |
ZHANG Zhen, CHEN Jianlin, SUN Chong, FANG Qun, ZHU Zhanxia.
Orbit prediction algorithm for space debris cluster based on polynomial approximation
[J]. Chinese Space Science and Technology, 2022, 42(6): 89-98.
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[2] |
YAO Jinming, LI Guangping, ZHANG Huibo, TIAN Hao, YOU Bindi, DAI Shijie.
Masscenter location identification of large space debris based on binocular vision and inertial measurement units fusion
[J]. Chinese Space Science and Technology, 2022, 42(1): 114-124.
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[3] |
WANG Liwu, LIU Anmin, XU Wangjing , ZHANG Qingbin, WANG Guangxing, LU Yuanyuan.
Research on capture and recovery of low-orbit useless targets
[J]. Chinese Space Science and Technology, 2021, 41(1): 84-90.
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[4] |
WANG Haoyu, HOU Xiaogeng.
Control method and fuel consumption analysis on random relative stationkeeping in close range to space debris
[J]. Chinese Space Science and Technology, 2020, 40(1): 27-.
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[5] |
WANG Wei, ZHENG Shi-Gui, CHANG Jie.
Design and high velocity impact test verification of flexible space debris protection shield
[J]. Chinese Space Science and Technology, 2019, 39(4): 82-.
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[6] |
XING Bi-Da, XIN Tian, ZHENG Chang-Wen.
Analysis and simulation of influence factors of spacebased optical space debris detection
[J]. Chinese Space Science and Technology, 2019, 39(3): 9-.
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[7] |
YANG Bo,WANG Haofan,MIAO Jun,ZHAO Xiaotao.
Highprecision visual navigation for space debris based on satellite formation
[J]. Chinese Space Science and Technology, 2019, 39(1): 40-.
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[8] |
NING Xiao-Lin, XU Yong-Zhi.
ImprovedINS/VNSIntegratedNavigationMeasurementModelforLunarRover
[J]. Chinese Space Science and Technology, 2015, 35(1): 9-18.
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[9] |
MA Jia-Jin, ZHU Zhan-Xia.
Coupling Analysis of the Spacecraft Attitude and Orbit Model Based on the Spiral Theory
[J]. Chinese Space Science and Technology, 2014, 34(6): 24-.
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[10] |
CAO Jing, YUAN Jian-Ping, LUO Jian-Jun.
ASetofNovelOrbitalElementsModelingApproachUsingQuaternion
[J]. Chinese Space Science and Technology, 2013, 33(5): 62-68.
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[11] |
FENG Chun, WU Hong-Tao, QIAO Bing, CHEN Bai.
Relative Position and Attitude Determination Between Spacecrafts Based on Bifocal Monocular Vision
[J]. Chinese Space Science and Technology, 2012, 32(4): 37-44.
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[12] |
JIANG Feng, WANG Hui-nan, HUANG Chao-Song.
Algorithm for Relative Position and Attitude of Formation Flying Satellites Based on Dual Quaternion
[J]. Chinese Space Science and Technology, 2012, 32(3): 20-26.
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[13] |
WEI Peng-Xin, JING Wu-Xing, GAO Chang-Sheng.
Quaternion Method with Modified Constraint Equation for Nonsingular Orbital Elements
[J]. Chinese Space Science and Technology, 2012, 32(1): 66-71.
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[14] |
WANG Yan, TANG Qiang, CHEN Xing-Lin.
Spacecraft Attitude Control under Control Constraint with Velocity-free
[J]. Chinese Space Science and Technology, 2011, 31(4): 64-69.
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[15] |
ZHU Zhi-Bin, LI Guo, HE Ying-Zi, WEI Chun-Ling.
Relative Cooperative Attitude and Position Control of Fractioned Spacecraft Based on Iterative Optimization
[J]. Chinese Space Science and Technology, 2011, 31(2): 1-8.
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