Descending Sun-Synchronous Orbits with Aerodynamic Inclination Correction

被引:16
|
作者
Llop, Josep Virgili [1 ]
Roberts, Peter C. E. [1 ]
Palmer, Kyle [1 ]
Hobbs, Stephen [1 ]
Kingston, Jennifer [1 ]
机构
[1] Cranfield Univ, Space Res Ctr, Cranfield MK43 0AL, Beds, England
关键词
SATELLITE; MISSION;
D O I
10.2514/1.G000183
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Earth observation spacecraft use sun-synchronous orbits because they enable observations of ground targets with similar illumination conditions over different passes. To achieve these orbits, spacecraft shall be orbiting the Earth at a particular inclination, which is a function of the orbiting altitude. In the low-Earth-orbit range, spacecraft experience aerodynamic drag, which makes the spacecraft orbit decay while the orbit inclination remains unchanged, hence loosing the sun-synchronous aspect of the orbit if no corrective measures are taken. A novel method is proposed whereby the sun-synchronous inclination is maintained, using aerodynamic lift, while the spacecraft decays due to aerodynamic drag. To achieve it, a lift-to-drag ratio in the range of 1.0-1.6 is required. This lift-to-drag ratio is not feasible with currently characterized surface properties but it may be achievable in the future. To apply this method in the present, propulsion that partially compensates the drag would be required to lower the lift-to-drag ratio requirement to a feasible level. This method could lower the propulsion requirements on low-altitude sun-synchronous spacecraft by letting them decay, but at the same time maintaining the sun-synchronous aspect of their orbits.
引用
收藏
页码:831 / 842
页数:12
相关论文
共 50 条
  • [31] Extension of the Sun-Synchronous Orbit
    Macdonald, Malcolm
    McKay, Robert
    Vasile, Massimiliano
    de Frescheyille, Francois Bosquillon
    JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 2010, 33 (06) : 1935 - 1940
  • [32] Artificial Martian frozen orbits and Sun-Synchronous orbits using continuous low-thrust control
    Wu, Zhigang
    Jiang, Fanghua
    Li, Junfeng
    ASTROPHYSICS AND SPACE SCIENCE, 2014, 352 (02) : 503 - 514
  • [33] Sun-synchronous repeat ground tracks and other useful orbits for future space missions
    Paek, S. W.
    Kim, S.
    Kronig, L.
    de Weck, O.
    AERONAUTICAL JOURNAL, 2020, 124 (1276): : 917 - 939
  • [34] Multiobjective Optimization in Repeating Sun-Synchronous Orbits Design for Remote-Sensing Satellites
    Saboori, Behnam
    Bidgoli, Ahmad Monemi
    Saboori, Bahareh
    JOURNAL OF AEROSPACE ENGINEERING, 2014, 27 (05)
  • [35] Comparison of collision risk from COLA and kinetic gas theory for sun-synchronous orbits©
    Peterson, GE
    Spaceflight Mechanics 2005, Vol 120, Pts 1 and 2, 2005, 120 : 299 - 315
  • [36] Simplified analysis of the thermal behavior of a spinning satellite flying over Sun-synchronous orbits
    Farrahi, Assal
    Perez-Grande, Isabel
    APPLIED THERMAL ENGINEERING, 2017, 125 : 1146 - 1156
  • [37] Semi-Analytical Search for Sun-Synchronous and Planet Synchronous Orbits around Jupiter, Saturn, Uranus and Neptune
    Yang, Biao
    Jiang, Yu
    Li, Hengnian
    Jiang, Chunsheng
    Liu, Yongjie
    Zhan, Chaojin
    Jing, Hongbao
    Dong, Yake
    MATHEMATICS, 2022, 10 (15)
  • [38] First experiment in sun-synchronous exploration
    Wettergreen, D
    Dias, B
    Shamah, B
    Teza, J
    Tompkins, P
    Urmson, C
    Wagner, M
    Whittaker, W
    2002 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION, VOLS I-IV, PROCEEDINGS, 2002, : 3501 - 3507
  • [39] Design of sun-synchronous orbits for the Mercury based on non-ideal solar sail model
    Shi, Xiao-Ning
    Guan, Ying-Zi
    Cui, Nai-Gang
    Shi, X.-N. (sxn_1219@163.com), 1600, Chinese Academy of Sciences (20): : 209 - 215
  • [40] Study of shift control strategy for local time of descending node based on sun-synchronous satellite
    School of Electronic and Information Engineering, Xi'an Jiaotong University, Xi'an 710049, China
    不详
    Kongzhi yu Juece Control Decis, 2008, 6 (693-696):